Heating & Air Repair Near Me

Hvac Companies Near Me: Find Trusted Cooling And Heating System Repairs Close To Your Place

Kinds Of A/c Repair Work Services You Can Count On

Ever questioned why your ac system all of a sudden stops blowing cold air on the most popular day of the year? Or why the heating system seems to sputter more than warm your home when winter bites? These are familiar headaches for anybody looking for A/c Repair work Near Me. The obstacles do not stop there: odd noises, fluctuating temperatures, or ineffective air flow can turn convenience into mayhem.

Thankfully, Bold City Heating and Air takes on these concerns head-on, providing a spectrum of specialized repair work services that change pain into comfortable relief. Bold City Heating and Air. Here's a look at the core services they master:

  1. Cooling Repair: From refrigerant leaks to compressor failures, every part is inspected and fixed to bring back cool air flow.
  2. Heating Unit Repair: Whether it's a defective thermostat or a broken heater igniter, no cold night goes unaddressed.
  3. Ductwork Repair work: Leaky ducts can waste energy and minimize indoor air quality. Repairing these concealed perpetrators is a video game changer.
  4. Thermostat Calibration: Precision in temperature control guarantees your system runs efficiently, conserving energy and money.
  5. Emergency A/c Solutions: When your system fails unexpectedly, prompt repairs minimize downtime and pain.

Think of strolling into your home after a sweltering day, welcomed by a fresh, completely conditioned breeze. Or curling up on a wintry night, confident your heating won't betray you. These aren't just fantasies-- Bold City Heating and Air makes them truth with every repair work.

Typical A/c Problem How Bold City Heating and Air Repairs It
Air conditioning not cooling Detect refrigerant leaks, replace faulty compressors, tidy coils
Heating unit not firing up Change igniters, repair electrical elements, adjust thermostat
Unequal air flow Seal duct leakages, balance air circulation, tidy vents

Why go for less when the very best HVAC repair near me can manage everything from small problems to significant malfunctions? Bold City Heating and Air does not simply fix systems-- they bring back peace of mind and comfort to your home.

Common HVAC Issues and Solutions

When your air conditioning unit sputters and stalls on the most popular day, it feels like the universe is playing a vicious joke. One of the most regular culprits? A stopped up air filter. Dust, pet hair, and particles choke the air flow, forcing your system to work overtime and ultimately fail. Ever question why your energy costs unexpectedly spike? That's your a/c system gasping under pressure.

Bold City Heating and Air understands the subtle indications that often go undetected up until it's nearly far too late. A whisper of strange sounds or a faint burning smell can signify internal issues that, if addressed promptly, avoid expensive replacements.

Top Heating And Cooling Problems Translated

  • Refrigerant leakages-- Unnoticeable yet impactful, these leaks undermine cooling performance and can damage the environment.
  • Thermostat breakdowns-- Often the perpetrator isn't the system however the brain behind it, misreading temperature levels and sending out blended signals.
  • Frozen coils-- Typically a result of poor air flow or low refrigerant, these icy transgressors stop cooling completely.

Professional Tips to Keep Your System in Peak Shape

  1. Change filters every 1-3 months; it's the simplest act with the biggest payoff.
  2. Inspect condensate drains pipes for blockages to prevent water damage and mold accumulation.
  3. Seal duct leaks to enhance efficiency-- sometimes a few inches of tape conserve you hundreds.

Have you ever discovered your unit biking on and off like a worried heart beat? That short cycling is a warning that Bold City Heating and Air immediately recognizes. Bold City Heating and Air. They dive deep, diagnosing with precision, ensuring your heating and cooling does not simply limp along but prospers. Their method transforms anxiety into relief, turning technical headaches into cool comfort

Picking a Reliable A/c Repair Service Technician

When your ac system sputters out in the peak of summer, or your heating system declines to warm a chilly night, you do not simply want any service technician-- you want someone who understands the heart beat of your home's heating and cooling system. Not every specialist has the flair for identifying the tricky perpetrators behind ineffective cooling or heating. Think of calling someone who patches the problem momentarily, just to have the system falter again days later. Aggravating, best?

Bold City Heating and Air understands that dependability isn't almost showing up; it has to do with appearing all set. Their service technicians get here equipped with diagnostic tools that dive deeper than surface symptoms, recording the real essence of the breakdown. They don't simply change parts; they unwind the story your system is informing. Have you ever questioned why your energy bills surge mysteriously? Sometimes, it's a subtle refrigerant leakage or a stopped up filter that's simple to overlook however pricey if overlooked.

Specialist Tips for Finding a Competent A/c Professional

  • Accreditation and Licensing: Validate qualifications-- qualified pros back their work with recognized credentials.
  • Transparent Quotes: Look for clear descriptions, not vague quotes that dodge the details.
  • Diagnostic Technique: Experts use systematic checks-- no guesswork, simply accurate analytical.
  • Communication Abilities: Can they describe repair work without jargon? That's an indication they appreciate your understanding.
  • Components Quality Awareness: They need to focus on long lasting components, not fast repairs that fade quickly.

Bold City Heating and Air prospers on an approach that a/c repair work is less about quick repairs and more about long-lived services crafted with care. They accept the complexity of each system, turning what might look like a complicated repair work into a smooth, transparent procedure. Like a proficient investigator, they unravel the peculiarities of your unit, ensuring that your comfort isn't simply restored, however optimized.

Decoding the Expenses Behind Heating And Cooling Repair Work Services

Ever observed how a basic a/c repair work can sometimes spiral into a wallet-busting experience? The truth lies in the labyrinth of hidden aspects that influence repair expenses. From the degree of the damage to the age of your system, these components weave a complicated narrative.

Think of a chilly evening where your air conditioner sputters and fails. You require a/c repair near me, and unexpectedly, you're confronted with a quote that seems like a puzzling puzzle (Bold City Heating and Air). Just what drives these numbers?

Crucial Element Affecting Repair Expenses

  • Severity of the Problem: Minor problems like thermostat malfunctions cost less compared to compressor or coil replacements.
  • Devices Age: Older systems often need more extensive repairs or part replacements, which treks the rate.
  • Labor Intricacy: Difficult-to-access units require more time and proficiency, naturally increasing labor expenses.
  • Replacement Parts: Real parts versus generic ones, schedule, and shipping can swing costs extensively.
  • Emergency Service: Repair work done outside routine hours usually come with premium charges.

Bold City Heating and Air knows these intricacies like the back of their hand. They have actually seen firsthand how a broken blower wheel or a blocked condensate drain can become a pricey experience if overlooked. Their specialists don't just restore-- they detect with accuracy, ensuring you pay for what's needed, not a cent more.

Here's a pro pointer: regular assessment of your HVAC system's filters and condensate lines can prevent small issues from growing out of control. Did you understand a clogged filter can require your unit to work overtime, causing wear that demands expensive repair work?

Repair Factor Effect on Expense Professional Suggestion
System Age High Set up previously examinations for older systems.
Labor Intensity Moderate to High Ask if technician travel or setup time is included.
Part Accessibility Variable Demand options or reconditioned parts alternatives.

Does your heating and cooling repair work quote feel like a shot in the dark? Bold City Heating and Air's transparency and expertise brighten the process, assisting you through what each cost suggests. After all, understanding these factors can turn a stressful repair into a manageable financial investment in your house's comfort.

Trusted A/c Service in Jacksonville, FL

Jacksonville, FL is a dynamic city known for its extensive park system, stunning beaches, and dynamic riverfront. As the most populous city in Florida, it uses a varied economy with strong sectors in financing, logistics, and healthcare. The city's warm environment makes efficient and reliable HVAC systems vital for homeowners and organizations alike to remain comfy year-round.

For those seeking professional advice and expert HVAC repair near me, Bold City Heating and Air can supply a totally free consultation to assist deal with any cooling or heating concerns efficiently. They are prepared to assist with all your heating and cooling requires.

  1. 32206: 32206 is a zip code covering a varied area of Jacksonville FL. It comprises Arlington, recognized for its mid-century architecture and easy entry to downtown.
  2. 32207: The 32207 zip code is a zip code encompassing parts of Jacksonville's Southside, recognized for its mix of residential areas and commercial developments. It includes diverse neighborhoods and convenient access to major roadways. Jacksonville FL
  3. 32208: 32208 is a zip code encompassing parts of Jacksonville FL's Southside, recognized for its combination of residential areas and business hubs. It includes well-known places like the Avenues Mall and adjacent business parks.
  4. 32209: 32209 is a zip code including parts of Arlington, a large and varied residential area in Jacksonville FL. It gives a combination of housing options, parks, and convenient entry to city center.
  5. 32210: This zip code is a vibrant neighborhood in Jacksonville FL, known for its combination of residential areas and businesses. It gives a convenient location with simple access to highways and nearby conveniences.
  6. 32211: 32211 is a zip code primarily including the Arlington area of Jacksonville FL. It's a vast residential district with a blend of housing choices, retail businesses, and parks.
  7. 32099: 32099 encompasses Ponte Vedra Beach, a coastal community recognized for its luxury homes and golf courses. It provides stunning beaches and a laid-back, resort style atmosphere.
  8. 32201: 32201 is a downtown Jacksonville FL postal code including the urban core. It includes landmarks like the Jacksonville Landing and historic buildings.
  9. 32202: 32202 is a vibrant neighborhood in Jacksonville FL, known for its historical charm and diverse community. It provides a mix of homes, shops, and cultural sites.
  10. 32203: 32203 is a zip code covering a large part of Jacksonville FL's city center area and surrounding neighborhoods. It includes several historic structures, businesses, and residential districts along the St. Johns River.
  11. 32204: The 32204 zip code is a zip code encompassing the neighborhood of Ortega in Jacksonville FL. It is a historic and affluent area known for its waterfront properties and oak-lined streets.
  12. 32205: 32205 is a zip code covering a big part of Jacksonville FL's urban core, including the historic Riverside and Avondale neighborhoods. Known for its lively arts scene, diverse architecture, and pedestrian-friendly streets, 32205 provides a mix of residential, business, and recreational spaces.
  13. 32212: The 32212 area code is a zip code covering parts of Jacksonville FL's Southside, recognized for its mix of residential areas and business districts. It provides a variety of homes, retail, and dining experiences.
  14. 32214: 32214 is a zip code covering parts of Jacksonville's Southside, recognized for its combination of residential areas and commercial developments. It provides a mixture of suburban living with easy access to shopping, dining, and major roadways.
  15. 32215: 32215 is a zip code covering several neighborhoods within Jacksonville FL's Southside area. It's recognized as a blend of housing sections, business hubs, and proximity to major roads.
  16. 32216: 32216 is a zip code encompassing parts of Jacksonville's Southside, recognized for its combination of residential zones and commercial developments. It offers a suburban feel with convenient access to shopping, dining, and major roadways.
  17. 32217: 32217 is a zip code covering a large portion of Mandarin, a suburb in Jacksonville FL known for its picturesque waterfront views. It includes a mix of residential areas, parks, and commercial developments along the St. Johns River.
  18. 32218: 32218 is a zip code encompassing parts of the Southside area in Jacksonville FL. It is a primarily residential section with a mix of apartments, condos, and single-family houses.
  19. 32227: The 32227 zip code includes the Jacksonville Beach area, providing a combination of housing neighborhoods and beachfront attractions. It is known for its laid-back coastal lifestyle and popular surfing spots. Jacksonville FL
  20. 32228: 32228 is a zip code encompassing the Jacksonville FL area. It is recognized for its sandy beaches, lively boardwalk, and beachfront leisure pursuits.
  21. 32229: 32229 is a zip code covering the Arlington area of Jacksonville FL. It is a large residential and business district situated east of the St. Johns River.
  22. 32235: 32235 is a zip code mainly covering the Arlington area of Jacksonville FL. It is a big housing area with a mix of homes, retail, and business businesses.
  23. 32236: 32236 is a zip code covering the Ocean Way and NewBerlin neighborhoods in Jacksonville FL. It's a largely residential area known for its suburban character and proximity to the Jacksonville International Airport.
  24. 32237: 32237 is a zip code covering a part of Jacksonville's Southside area. It is known for a mix of residential neighborhoods, commercial centers, and closeness to the University of North Florida.
  25. 32238: 32238 is a zip code encompassing sections of Jacksonville FL's Southside, recognized for its mix of housing and business expansions. It includes well-known shopping malls, office parks, and diverse housing choices.
  26. 32239: 32239 is a zip code covering the Kernan area of Jacksonville FL. It's a burgeoning residential area with a blend of housing selections and handy access to services.
  27. 32240: 32240 is a zip code including the Argyle Forest neighborhood in Jacksonville FL. This area is recognized for its family-friendly atmosphere and residential development.
  28. 32241: 32241 is a Jacksonville FL zip code including the Southside Estates area. It is a mainly residential section with a mix of housing choices and convenient access to major roadways.
  29. 32244: 32244 is a zip code including the Jacksonville Beaches region. It covers Neptune Beach, Atlantic Beach, and some of Jacksonville Beach.
  30. 32219: 32219 is a zip code linked with the Mandarin area in Jacksonville FL. It's a big housing area known for its blend of long-standing communities and more recent projects.
  31. 32220: 32220 is a zip code covering the Argyle Forest neighborhood in Jacksonville FL. This area is a primarily residential area recognized for its family-friendly atmosphere and convenient access to shopping and dining.
  32. 32221: The 32221 is a zip code including parts of of Jacksonville FL's Southside, known for its combination of residential areas and commercial developments. It includes neighborhoods like Baymeadows and Deerwood, offering a variety of housing and retail choices.
  33. 32222: 32222 in Jacksonville, FL comprises the Beach Haven and South Beach communities. It's known for its closeness to the coast and residential areas.
  34. 32223: 32223 is a zip code surrounding the Mandarin neighborhood of Jacksonville FL. It is a large housing location known for its past, parks, and proximity to the St. Johns River.
  35. 32224: 32224 is a zip code covering Jacksonville Beach, a shoreline community famous for its grainy beaches. Residents and visitors alike enjoy riding waves, angling, and a vibrant promenade scene in Jacksonville FL.
  36. 32225: 32225 is a zip code covering Jacksonville FL's Southside area, known because of its combination of residential locations, business centers, and closeness to the St. Johns River. It offers a mixture of suburban living with easy entry to stores, dining, and leisure opportunities.
  37. 32226: 32226 is a zip code covering the Southside area of Jacksonville FL. It's a large, varied area known because of its business hubs, residential communities, and closeness to the St. Johns River.
  38. 32230: 32230 is a zip code encompassing the Jacksonville FL communities of Arlington and Fort Caroline. This area offers a mix of residential areas, parks, and historical sites.
  39. 32231: 32231 is the zip postal code for Mandarin, a large suburban neighborhood in Jacksonville FL known because of its history and picturesque views along the St. Johns River. It provides a combination of housing developments, parks, and commercial centers.
  40. 32232: 32232 is the zip code for the Kernan area of Jacksonville FL. It's a developing suburban area recognized for its housing areas and closeness to the beach.
  41. 32234: 32234 is the zip code for the Mandarin community in Jacksonville FL. It is a big residential area known because of its history, parks, and closeness to the St. Johns River.
  42. 32245: 32245 is a zip code covering a few communities in Jacksonville FL, such as the affluent Deerwood area known for its gated neighborhoods and the large St. Johns Town Center retail and restaurant destination. Locals enjoy a mix of upscale living, retail convenience, and closeness to major roadways.
  43. 32246: 32246 is a zip code covering the Hodges Boulevard area in Jacksonville FL. It's a primarily housing area with a mix of home choices and business projects.
  44. 32247: 32247 is a zip code encompassing the Mandarin area in Jacksonville FL. It's a big residential area famous for its historic origins, waterfront views, and welcoming atmosphere.
  45. 32250: 32250 is a zip code covering a portion of Jacksonville FL's Southside, recognized by its blend of housing areas and business expansions. It covers sections of the Baymeadows area, offering a variety of accommodation choices and convenient access to stores and dining.
  46. 32254: 32254 is a postal code covering parts of Jacksonville's Southside, known for its mix of housing areas and commercial developments. It contains the well-known Deerwood Park and Tinseltown areas.
  47. 32255: 32255 is a postal code encompassing several areas in Jacksonville FL's Southside area. It includes a combination of housing areas, commercial hubs, and proximity to main roadways.
  48. 32256: 32256 is a zip code encompassing parts of the Southside neighborhood in Jacksonville FL. It provides a combination of housing developments, commercial centers, and recreational opportunities.
  49. 32257: 32257 is a zip code encompassing the Kernan and Hodges Boulevards region of Jacksonville FL. This region is known for its housing neighborhoods, retail locations, and closeness to the University of North Florida.
  50. 32258: 32258 is a zip code covering portions of Jacksonville FL's Southside, known for residential sections and business developments. It covers communities like Baymeadow and Deerwood, giving a mix of lodging options and handy entrance to shopping and food.
  51. 32260: That zip code is a zip code encompassing Jacksonville FL's Southside neighborhood. It features a blend of housing, commercial developments, and closeness to the St. Johns River.
  52. 32277: 32277 is the zip code for Jacksonville FL, a coastal community known for its sandy shores and vibrant boardwalk. It provides a mix of residential areas, hotels, restaurants, and recreational pursuits.

  • Downtown Jacksonville: Downtown Jacksonville is the central commercial area of Jacksonville, Florida, known for its lively mix of historic architecture and contemporary skyscrapers. It features cultural attractions, parks along the water, and a selection of dining and entertainment options.
  • Southside: Southside is a vibrant district in Jacksonville, FL, known for its combination of residential communities, malls, and business districts. It offers a mix of city convenience and suburban comfort, making it a popular area for households and workers.
  • Northside: Northside is a large district in Jacksonville, FL, known for its varied communities and industrial areas. It features a blend of residential neighborhoods, parks, and commercial zones, aiding the city's growth and development.
  • Westside: Westside is a vibrant district in Jacksonville, FL, known for its diverse community and rich cultural heritage. It features a mix of neighborhoods, shops, and parks, offering a distinctive blend of city and suburban life.
  • Arlington: Arlington is a lively district in Jacksonville, FL, known for its blend of residential neighborhoods and commercial areas. It features green spaces, shopping centers, and access to the St. Johns River, making it a favored area for families and outdoor enthusiasts.
  • Mandarin: Mandarin remains a historic district in Jacksonville, Florida, known for its scenic riverfront views and appealing small-town atmosphere. It boasts lush parks, local shops, and a vibrant cultural heritage dating back to the 19th century.
  • San Marco: San Marco is a vibrant neighborhood in Jacksonville, FL, known for its historic architecture and charming town center. It offers a mix of unique shops, restaurants, and cultural attractions, making it a well-liked destination for residents and visitors alike.
  • Riverside: Riverside is a lively community in Jacksonville, FL, known for its heritage architecture and bustling arts scene. It offers a blend of one-of-a-kind shops, restaurants, and picturesque riverfront parks, making it a popular destination for residents and visitors alike.
  • Avondale: Avondale is a delightful neighborhood in Jacksonville, FL, known for its classic architecture and lively local shops. It offers a mix of residential areas, upscale restaurants, and cultural attractions along the St. Johns River.
  • Ortega: Ortega is a picturesque and beautiful neighborhood in Jacksonville, FL, known for its stunning waterfront homes and tree-lined streets. It offers a delightful blend of traditional Southern architecture and contemporary amenities, making it a desirable residential area.
  • Murray Hill: Murray Hill is a vibrant historic neighborhood in Jacksonville, FL, known for its quaint bungalows and diverse local businesses. It offers a blend of residential comfort and a bustling arts and dining scene, making it a popular destination for residents and visitors alike.
  • Springfield: Springfield is a heritage neighborhood in Jacksonville, FL, known for its charming early 20th-century architecture and dynamic community. It features a mix of residential homes, local businesses, and cultural attractions, making it a popular area for both residents and visitors.
  • East Arlington: East Arlington is a dynamic neighborhood in Jacksonville, FL, known for its diverse community and easy access to shopping and parks. It features a mix of residential homes, parks, and shops, making it a attractive place to live.
  • Fort Caroline: Fort Caroline is a historic district in Jacksonville, FL, known for its rich colonial history and nearness to the site of the 16th-century French fort. It includes a mix of residential areas, parks, and cultural landmarks that showcase its heritage.
  • Greater Arlington: Greater Arlington in Jacksonville, FL, is a dynamic district known for its housing areas, shopping centers, and parks. It offers a mix of suburban lifestyle with convenient access to the Jacksonville downtown and waterfront locations.
  • Intracoastal West: Intracoastal West is a lively neighborhood in Jacksonville, FL, known for its beautiful waterways and close proximity to the Intracoastal Waterway. It offers a combination of residential and commercial areas, providing a unique blend of metropolitan ease and natural charm.
  • Jacksonville Beaches: Jacksonville Beaches is a lively coastal community in Jacksonville, FL, known for its beautiful sandy shores and laid-back atmosphere. It features a mix of living communities, local businesses, and leisure activities along the Atlantic Ocean.
  • Neptune Beach: Neptune Beach is a lovely coastal community located in Jacksonville FL, known for its gorgeous beaches and laid-back atmosphere. It offers a blend of residential neighborhoods, local shops, and dining options, making it a popular destination for both residents and visitors.
  • Atlantic Beach: Atlantic Beach is a seaside community located in Jacksonville, Florida, known for its stunning beaches and laid-back atmosphere. It offers a mix of residential areas, local shops, and outdoor recreational activities along the Atlantic Ocean.
  • Jackson Beach: Jacksonville Beach is a lively beachside community in Jacksonville, FL, known for its stunning sandy shores and bustling boardwalk. It offers a blend of residential neighborhoods, local shops, restaurants, and recreational activities, making it a well-liked destination for both residents and visitors.
  • Baldwin: Baldwin is a quiet community located within Duval County, near Jacksonville FL, Florida, known for its traditional charm and close-knit community. It features a combination of housing areas, local businesses, and scenic parks, offering a quiet, suburban atmosphere.
  • Oceanway: Oceanway is a living neighborhood in Jacksonville, Florida, known for its suburban atmosphere and family-friendly amenities. It features a variety of housing options, parks, and local businesses, making it a favored area for residents seeking a close-knit environment.
  • South Jacksonville: South Jacksonville is a vibrant district in Jacksonville, FL, known for its housing areas and local businesses. It offers a blend of historic charm and up-to-date facilities, making it a favored area for families and working individuals.
  • Deerwood: Deerwood is a notable neighborhood in Jacksonville, FL, known for its upscale residential communities and beautiful green spaces. It offers a mix of premium homes, golf courses, and quick access to shopping and dining options.
  • Baymeadows: Baymeadows is a dynamic district in Jacksonville, FL, known for its combination of residential neighborhoods and commercial areas. It offers a range of shopping, dining, and recreational options, making it a well-liked destination for locals and visitors alike.
  • Bartram Park: Bartram Park is a lively neighborhood in Jacksonville, FL, known for its up-to-date residential communities and closeness to nature. It offers a blend of urban amenities and outdoor recreational opportunities, making it a popular choice for families and professionals.
  • Nocatee: Nocatee is a master-planned community located near Jacksonville, FL, known for its welcoming atmosphere and wide-ranging amenities. It features parks, trails, and recreational facilities, making it a preferred choice for residents seeking a vibrant suburban lifestyle.
  • Brooklyn: Brooklyn is a dynamic district in Jacksonville, FL, known for its classic charm and close-knit community. It offers a mix of residences, shops, and historic sites that highlight the area's rich heritage.
  • LaVilla: LaVilla is a historic area in Jacksonville FL, known for its extensive cultural heritage and vibrant arts environment. Formerly a flourishing African American community, it had a significant part in the urban music and entertainment past.
  • Durkeeville: Durkeeville is a historic in Jacksonville, Florida, known for its robust African American heritage and dynamic community. It features a combination of residential areas, local businesses, and cultural landmarks that demonstrate its deep roots in the city's history.
  • Fairfax: Fairfax is a vibrant neighborhood in Jacksonville, FL, known for its historic charm and close-knit community. It features a mix of houses, local businesses, and parks, offering a friendly atmosphere for residents and guests alike.
  • Lackawanna: Lackawanna is a housing neighborhood in Jacksonville, Florida, known for its quiet streets and community atmosphere. It features a mix of single-family homes and neighborhood shops, contributing to its small-town feel within the city.
  • New Town: New Town is a noted neighborhood in Jacksonville, FL, famous for its strong community spirit and vast cultural heritage. It includes a combination of residential areas, local businesses, and community organizations striving to improve and improve the district.
  • Panama Park: Panama Park is a residential neighborhood in Jacksonville, FL, known for its quiet streets and neighborly atmosphere. It offers convenient access to local amenities and parks, making it an attractive area for households and professionals.
  • Talleyrand: Talleyrand is a heritage neighborhood in Jacksonville, Florida, known for its housing charm and proximity to the St. Johns River. The area offers a mix of traditional homes and local businesses, reflecting its strong community heritage.
  • Dinsmore: Dinsmore is a housing neighborhood located in Jacksonville, Florida, known for its quiet streets and community-oriented atmosphere. It features a mix of single-family homes and local amenities, offering a residential feel within the city.
  • Garden City: Garden City is a thriving neighborhood in Jacksonville, FL, known for its blend of residential homes and neighborhood shops. It offers a tight-knit community atmosphere with convenient access to city amenities.
  • Grand Park: Grand Park is a dynamic neighborhood in Jacksonville, Florida, known for its historic charm and diverse community. It features shaded streets, local parks, and a selection of small businesses that contribute to its friendly atmosphere.
  • Highlands: Highlands is a dynamic neighborhood in Jacksonville, FL known for its attractive residential streets and local parks. It offers a mix of historic homes and modern amenities, creating a friendly community atmosphere.
  • Lake Forest: Lake Forest is a housing neighborhood located in Jacksonville, Florida, known for its peaceful streets and family-friendly atmosphere. It features a mix of single-family homes, parks, and local amenities, making it a desirable community for residents.
  • Paxon: Paxon is a housing neighborhood located in the west part of Jacksonville, Florida, known for its diverse community and reasonably priced housing. It features a mix of standalone residences and local businesses, contributing to its close-knit, suburban atmosphere.
  • Ribault: Ribault is a lively neighborhood in Jacksonville, Florida, known for its varied community and residential charm. It features a mix of historic homes and local businesses, enhancing its unique cultural identity.
  • Sherwood Forest: Sherwood Forest is a housing neighborhood in Jacksonville, FL, known for its tree-lined streets and family-friendly atmosphere. It features a combination of historic and modern homes, offering a peaceful suburban feel close to city amenities.
  • Whitehouse: Whitehouse is a housing neighborhood located in Jacksonville, Florida, known for its peaceful streets and friendly atmosphere. It features a mix of individual residences and local amenities, making it a favored area for families and professionals.
  • Cedar Hills: Cedar Hills is a vibrant neighborhood in Jacksonville, FL, known for its diverse community and convenient access to local amenities. It offers a combination of residential and commercial areas, adding to its dynamic and welcoming environment.
  • Grove Park: Grove Park is a living neighborhood in Jacksonville, Florida, known for its lovely vintage homes and tree-lined streets. It offers a tight-knit community atmosphere with quick access to downtown services and parks.
  • Holiday Hill: Holiday Hill is a housing neighborhood in Jacksonville, Florida, known for its peaceful streets and tight-knit community. It offers convenient access to local parks, schools, and shopping centers, making it a desirable area for families.
  • Southwind Lakes: Southwind Lakes is a residential neighborhood in Jacksonville, FL known for its peaceful lakes and well-maintained community spaces. It offers a peaceful suburban atmosphere with convenient access to local amenities and parks.
  • Secret Cove: Secret Cove is a tranquil waterfront neighborhood in Jacksonville, FL, known for its relaxing atmosphere and picturesque views. It offers a blend of residential homes and natural landscapes, making it a popular spot for outdoor enthusiasts and families.
  • Englewood: Englewood is a lively neighborhood in Jacksonville, FL, known for its multicultural community and deep cultural heritage. It offers a blend of residential areas, local businesses, and recreational spaces, making it a bustling part of the city.
  • St Nicholas: St. Nicholas is a historic neighborhood in Jacksonville, Florida, known for its delightful early 20th-century architecture and thriving community atmosphere. It offers a variety of residential homes, local businesses, and cultural landmarks, making it a distinctive and inviting area within the city.
  • San Jose: San Jose is a dynamic district in Jacksonville, FL, known for its living communities and business districts. It offers a mix of suburban lifestyle with convenient access to green spaces, shopping, and restaurants.
  • Pickwick Park: Pickwick Park is a housing neighborhood in Jacksonville, Florida, known for its quiet streets and community-oriented atmosphere. It offers a mix of detached houses and local amenities, making it a popular area for families and professionals.
  • Lakewood: Lakewood is a lively neighborhood in Jacksonville, FL known for its historic charm and multicultural community. It features a blend of residences, local shops, and parks, offering a friendly atmosphere for residents and visitors alike.
  • Galway: Galway is a residential neighborhood in Jacksonville, FL, known for its residential atmosphere and neighborly living. It features a combination of single-family homes and local amenities, providing a peaceful and kid-friendly environment.
  • Beauclerc: Beauclerc is a residential neighborhood in Jacksonville FL, known for its calm streets and kid-friendly atmosphere. It offers a mix of detached houses and local amenities, making it a popular choice for residents seeking a suburban feel within the city.
  • Goodby's Creek: Goodby's Creek is a housing neighborhood in Jacksonville, FL, known for its quiet atmosphere and proximity to natural surroundings. It offers a mix of suburban living with simple access to nearby amenities and parks.
  • Loretto: Loretto is a classic neighborhood in Jacksonville, Florida, known for its quaint residential streets and tight-knit community atmosphere. It features a variety of architectural styles and offers convenient access to downtown Jacksonville and nearby parks.
  • Sheffield: Sheffield is a residential neighborhood in Jacksonville, FL, known for its peaceful streets and community-oriented atmosphere. It features a mix of private residences and local parks, making it a popular area for families.
  • Sunbeam: Sunbeam is a vibrant neighborhood in Jacksonville, FL, known for its charming residential streets and strong community spirit. It offers a mix of historic homes and local businesses, creating a friendly atmosphere for residents and visitors alike.
  • Killarney Shores: Killarney Shores is a residential neighborhood in Jacksonville FL, Florida, known for its peaceful streets and friendly community. It offers convenient access to local parks, schools, and shopping centers, which makes it a desirable area for families.
  • Royal Lakes: Royal Lakes is a residential neighborhood in Jacksonville FL, known for its tranquil environment and welcoming atmosphere. It features well-kept homes, local parks, and easy access to nearby schools and shopping centers.
  • Craig Industrial Park: Craig Industrial Park is a industrial and manufacturing area in Jacksonville, FL, known for its combination of warehouses, production plants, and logistics hubs. It serves as a vital hub for local businesses and contributes substantially to the city's economy.
  • Eastport: Eastport is a dynamic neighborhood in Jacksonville, FL, known for its historic charm and waterside views. It offers a blend of residential areas, local businesses, and recreational spaces along the St. Johns River.
  • Yellow Bluff: Yellow Bluff is a residential neighborhood in Jacksonville, Florida, known for its quiet streets and close-knit community. It offers a mix of suburban homes and local amenities, providing a comfortable living environment.
  • Normandy Village: Normandy Village is a housing neighborhood in Jacksonville, FL, known for its mid-20th-century residences and kid-friendly setting. It offers convenient access to nearby parks, schools, and shopping centers, making it a preferred choice for residents.
  • Argyle Forest: Argyle Forest is a residential area in Jacksonville, FL, recognized for its kid-friendly environment and convenient access to shopping and educational institutions. It includes a mix of single-family homes, parks, and recreational amenities, which makes it a popular choice for living in the suburbs.
  • Cecil Commerce Center: Cecil Commerce Center is a big industrial and commercial district in Jacksonville, Florida, known for its strategic location and extensive transportation infrastructure. It serves as a focal point for logistics, manufacturing, & distribution businesses, contributing significantly to the local economy.
  • Venetia: Venetia is a living neighborhood in Jacksonville FL, known for its quiet streets and residential atmosphere. It offers easy access to local parks, schools, and shopping centers, making it a well-liked area for families.
  • Ortega Forest: Ortega Forest is a lovely housing community in Jacksonville, FL, known for its historic homes and verdant, tree filled streets. It offers a quiet suburban atmosphere while being easily close to downtown Jacksonville.
  • Timuquana: Timuquana is a living neighborhood located in Jacksonville, Florida, known for its peaceful streets and local parks. It offers a variety of detached houses and easy access to local facilities and schools.
  • San Jose Forest: San Jose Forest is a residential neighborhood located in Jacksonville, Florida, known for its green greenery and kid-friendly atmosphere. The area features a combination of detached houses and local parks, offering a quiet suburban environment.
  • E-Town: E-Town is a lively neighborhood located in Jacksonville, Florida, known for its varied community and heritage significance. It features a combination of residential areas, local businesses, and cultural landmarks that enhance its unique character.

  • Cummer Museum of Art and Gardens: This Cummer Museum of Art and Gardens exhibits a wide collection of art representing various periods and cultures. Visitors can also explore beautiful formal gardens with views of the St. Johns River in Jacksonville FL.
  • Jacksonville Zoo and Gardens: Jacksonville Zoo and Gardens showcases a wide assortment of creatures and flora from around the world. It provides interesting exhibits, instructive activities, and preservation initiatives for visitors of all ages. Jacksonville FL
  • Museum of Science and History: The Museum of Science & History in Jacksonville FL features hands-on exhibits and a planetarium suitable for all ages. Visitors can explore science, history, and culture through engaging displays and informative programs.
  • Kingsley Plantation: Kingsley Plantation is a historical site that provides a peek into Florida plantation history, including the lives of enslaved people and the planter family. Visitors can explore the grounds, such as the slave quarters, plantation house, and barn. Jacksonville FL
  • Fort Caroline National Memorial: Fort Caroline National Memorial honors the 16th-century French effort to establish a colony in Florida. It offers displays and trails exploring the history and natural environment of the area in Jacksonville FL.
  • Timucuan Ecological and Historic Preserve: Timucuan Ecological and Historic Preserve protects one of the last unspoiled coastal marshes on the Atlantic Coast. It preserves the history of the Timucuan Indians, European explorers, and plantation owners.
  • Friendship Fountain: Friendship Fountain is a big, well-known water fountain in Jacksonville FL. It displays remarkable water features and lights, which makes it a popular landmark and place to gather.
  • Riverside Arts Market: Riverside Arts Market in Jacksonville FL, is a vibrant week-to-week arts and crafts market beneath the Fuller Warren Bridge. It features regional artisans, on-stage music, food sellers, and a beautiful scene of the St. Johns River.
  • San Marco Square: San Marco Square is a delightful shopping and dining area with a European-inspired atmosphere. It is famous for its high-end shops, restaurants, and the well-known fountain with lions. Jacksonville FL
  • St Johns Town Center: St. Johns Town Center is an upscale outdoor shopping mall in Jacksonville FL, showcasing a mix of high-end retailers, well-known brands, and eateries. It's a leading destination for purchasing, eating, and recreation in Northeast Florida.
  • Avondale Historic District: Avondale Historic District showcases delightful early 20th-century architecture and specialty shops. It's a dynamic neighborhood known for its local restaurants and historic character. Jacksonville FL
  • Treaty Oak Park: Treaty Oak Park is a lovely park in Jacksonville FL, home to a huge, centuries-old oak tree. The park offers a peaceful retreat with walking paths and breathtaking views of the St. Johns River.
  • Little Talbot Island State Park: Little Talbot Island State Park in Jacksonville FL provides immaculate beaches and varied ecosystems. Visitors can experience activities like hiking, camping, and observing wildlife in this natural coastal setting.
  • Big Talbot Island State Park: Big Talbot Island State Park in Jacksonville FL, offers breathtaking shoreline views and diverse ecosystems for outdoor lovers. Discover the one-of-a-kind boneyard beach, walk picturesque trails, and observe plentiful wildlife in this beautiful natural sanctuary.
  • Kathryn Abbey Hanna Park: Kathryn Abbey Hanna Park in Jacksonville FL, offers a gorgeous beach, wooded trails, and a 60-acre freshwater lake for leisure. It's a favored spot for camping, surfing, kayaking, and biking.
  • Jacksonville Arboretum and Gardens: Jacksonville Arboretum & Gardens provides a lovely natural getaway with varied paths and themed gardens. Guests can explore a variety of plant species and relish serene outside recreation.
  • Memorial Park: Memorial Park is a 5.25-acre area that serves as a tribute to the over 1,200 Floridians who lost their lives in World War I. The park includes a statue, reflecting pool, and gardens, providing a place for remembrance and reflection. Jacksonville FL
  • Hemming Park: Hemming Park is Jacksonville FL's oldest park, a historic public square holding events, markets, and community gatherings. It offers a green space in the center of downtown with art exhibits and a lively ambiance.
  • Metropolitan Park: Metropolitan Park in Jacksonville FL provides a stunning riverfront setting for occasions and recreation. Featuring play areas, a concert venue, and breathtaking views, it's a favorite destination for residents and visitors alike.
  • Confederate Park: Confederate Park in Jacksonville FL, was originally designated to pay tribute to Confederate soldiers and sailors. It has since been redesignated and re-purposed as a space for community events and recreation.
  • Beaches Museum and History Park: Beaches Museum & History Park safeguards and relays the one-of-a-kind history of Jacksonville's beaches. Investigate exhibits on nearby life-saving, surfing, and early beach communities.
  • Atlantic Beach: Atlantic Beach features a charming seaside community with stunning beaches and a relaxed atmosphere. People can experience surfing, swimming, and discovering local shops and restaurants near Jacksonville FL.
  • Neptune Beach: Neptune Beach gives a classic Florida beach town feeling with its grainy shores and laid-back vibe. Guests can enjoy surfing, swimming, and discovering nearby shops and restaurants near Jacksonville FL.
  • Jacksonville Beach: Jacksonville Beach is a dynamic shoreline city known because of its grainy beaches and surf scene. It provides a blend of leisure activities, restaurants, and nightlife along the Atlantic Ocean.
  • Huguenot Memorial Park: Huguenot Memorial Park offers a beautiful beachfront location with chances for camping, fishing, and birdwatching. Visitors can enjoy the natural allure of the area with its diverse wildlife and scenic coastal views in Jacksonville FL.
  • Castaway Island Preserve: Castaway Island Preserve in Jacksonville FL, offers picturesque trails and boardwalks through diverse habitats. Visitors can relish walks in nature, birdwatching, and discovering the beauty of the coastal area.
  • Yellow Bluff Fort Historic State Park: Yellow Bluff Fort Historic State Park in Jacksonville FL preserves the earthen remains of a Civil War-era Confederate fort. Guests can explore the historic location and learn regarding its significance through informative displays.
  • Mandarin Museum & Historical Society: The Mandarin Museum & Historical Society safeguards the history of the Mandarin neighborhood in Jacksonville FL. Guests are able to discover exhibits and artifacts that display the region's distinctive past.
  • Museum of Southern History: This Museum of Southern History presents relics and exhibits connected to the history and culture of the Southern United States. Guests can investigate a variety of topics, including the Civil War, slavery, and Southern art and literature. Jacksonville FL
  • The Catty Shack Ranch Wildlife Sanctuary: The Catty Shack Ranch Wildlife Sanctuary in Jacksonville FL, provides escorted foot tours to view saved big cats and other uncommon animals. It's a non-profit organization committed to offering a safe, loving, forever home for these animals.

Air Conditioning Installation Right setup of cooling systems ensures good and pleasant indoor climates. This important process ensures best performance and durability of climate control units. https://en.wikipedia.org/wiki/Air_conditioning
Air Conditioner ACs cool indoor spaces by extracting heat and humidity. Proper setup by qualified technicians ensures efficient operation and ideal climate control. https://en.wikipedia.org/wiki/Air_conditioning
Hvac Hvac systems govern heat and air quality. They are crucial for establishing environmental control solutions in buildings. https://en.wikipedia.org/wiki/HVAC
Thermostat A Thermostat is the primary component for managing temperature in climate control systems. It signals the cooling unit to activate and deactivate, keeping the desired indoor environment. https://en.wikipedia.org/wiki/Thermostat
Refrigerant Refrigerant is vital for temperature control systems, extracting heat to generate cold air. Proper handling of refrigerants is vital during HVAC installation for efficient and safe operation. https://en.wikipedia.org/wiki/Refrigerant
Compressor The Compressor is the heart of the cooling system, pressurizing refrigerant. This process is critical for efficient temperature regulation in climate control systems. https://en.wikipedia.org/wiki/Compressor
Evaporator Coil An Evaporator Coil absorbs heat from indoor air, cooling it down. This component is essential for efficient climate control system setup in buildings. https://en.wikipedia.org/wiki/Air_conditioning
Condenser Coil The Condenser Coil serves as an important component in refrigeration systems, dissipating heat outside. It facilitates the heat transfer needed for efficient indoor climate management. https://en.wikipedia.org/wiki/Condenser_(heat_transfer)
Ductwork Ductwork is vital for spreading conditioned air around a building. Suitable duct layout and setup are vital for efficient climate control system placement. https://en.wikipedia.org/wiki/Duct_(HVAC)
Ventilation Effective Ventilation is crucial for adequate airflow and indoor air standard. It has a critical role in guaranteeing optimal operation and efficiency of climate control systems. https://en.wikipedia.org/wiki/Ventilation
Heat Pump Heat Pumps transfer heat, offering both heating and cooling. They are essential parts in modern climate control system setups, offering energy-efficient temperature regulation. https://en.wikipedia.org/wiki/Heat_pump
Split System Split systems offer both heating and cooling via an indoor unit connected to an outdoor compressor. They offer a ductless solution for temperature control in certain rooms or areas. https://en.wikipedia.org/wiki/Air_conditioning
Central Air Conditioning Central air conditioning systems cool whole homes from a sole, powerful unit. Proper setup of these systems is vital for efficient and effective home chilling. https://en.wikipedia.org/wiki/Air_conditioning
Energy Efficiency Ratio Energy Efficiency Ratio measures cooling efficiency: a greater Energy Efficiency Ratio shows improved operation and lower energy use for climate control systems. Choosing a unit with a high Energy Efficiency Ratio can substantially reduce long-term costs when installing a new climate control system. https://en.wikipedia.org/wiki/Energy_efficiency_ratio
Variable Speed Compressor Variable Speed Compressors alter cooling output to match need, boosting performance and comfort in climate control systems. This precise adjustment lowers power loss and maintains consistent thermals in indoor environments. https://en.wikipedia.org/wiki/Air_conditioning
Compressor Maintenance Maintaining compressors ensures efficient operation and lifespan in refrigeration systems. Neglecting it can lead to costly repairs or system failures when setting up climate control. https://en.wikipedia.org/wiki/Air_compressor
Air Filter Air Filter trap dust and debris, making sure of clean airflow inside HVAC systems. This enhances system efficiency and indoor air condition during temperature regulation setup. https://en.wikipedia.org/wiki/Air_filter
Installation Manual The Installation Manual offers important guidance for properly installing a cooling system. It guarantees proper procedures are used for optimal performance and safety during the unit's setup. https://en.wikipedia.org/wiki/Air_conditioning
Electrical Wiring Electrical Wiring is critical for supplying power to and controlling the components of climate control systems. Proper wiring guarantees safe and efficient operation of the cooling and heating units. https://en.wikipedia.org/wiki/Electrical_wiring
Indoor Unit Indoor Unit moves conditioned air within a space. This is a critical component for HVAC systems, ensuring suitable temp control in structures. https://en.wikipedia.org/wiki/Air_conditioning
Outdoor Unit The Outdoor Unit contains the compressor and condenser, dissipating heat externally. It's essential for a full climate control system installation, ensuring effective cooling inside. https://en.wikipedia.org/wiki/Air_conditioning
Maintenance Regular care ensures effective operation and extends the lifespan of climate control systems. Proper Maintenance averts failures and optimizes the efficiency of installed cooling systems. https://en.wikipedia.org/wiki/Air_conditioning
Energy Efficiency Energy Efficiency is essential for lowering energy use and costs when establishing new climate control systems. Emphasizing efficient equipment and correct installation minimizes environmental impact and maximizes long-term savings. https://en.wikipedia.org/wiki/Energy_efficiency
Thermodynamics Thermo explains how heat transfers and transforms energy, crucial for cooling system setup. Efficient climate control design relies on thermodynamic principles to optimize energy use during setup location. https://en.wikipedia.org/wiki/Thermodynamics
Building Codes Building Codes ensure suitable and secure HVAC system installation in structures. They govern aspects such as energy efficiency and air flow for climate control systems. https://en.wikipedia.org/wiki/Building_code
Load Calculation Load Calculation figures out the heating and chilling demands of a space. It's vital for picking appropriately sized HVAC units for effective environmental control. https://en.wikipedia.org/wiki/Heat_transfer
Mini Split Mini Split provide a ductless approach to temperature management, offering targeted heating and cooling. Their simple installation makes them suitable for spaces where adding ductwork for climate modification is impractical. https://en.wikipedia.org/wiki/Split-system_air_conditioner
Air Handler An Air Handler moves conditioned air around a building. It is a crucial component for correct climate control system installation. https://en.wikipedia.org/wiki/Air_handler
Insulation Insulation is essential for preserving efficient temperature regulation within a structure. It minimizes heat exchange, lessening the burden on cooling systems and improving temperature setups. https://en.wikipedia.org/wiki/Thermal_insulation
Drainage System Drainage Systems eliminate condensate produced by air conditioning equipment. Correct drainage avoids water damage and assures effective operation of air conditioning setups. https://en.wikipedia.org/wiki/Condensate_drain
Filter Filters are critical parts that remove contaminants from the air during the setup of climate control systems. This ensures purer air circulation and protects the system's internal parts. https://en.wikipedia.org/wiki/Air_filter
Heating Ventilation And Air Conditioning Heating Ventilation And Air Conditioning systems regulate inside climate by controlling temperature, humidity, and air condition. Proper installation of these systems guarantees economical and effective cooling and environmental control within buildings. https://en.wikipedia.org/wiki/HVAC
Split System Air Conditioner Split System Air Conditioner provide effective refrigeration and heating by separating the compressor and condenser from the air handler. Their design simplifies the procedure of establishing climate control in homes and businesses. https://en.wikipedia.org/wiki/Air_conditioning
Hvac Technician Hvac Technicians are trained experts who specialize in the installation of climate control systems. They make certain of proper operation and effectiveness of these systems for ideal indoor well-being. https://en.wikipedia.org/wiki/Air_conditioning
Indoor Air Quality Indoor Air Quality substantially impacts well-being and health, so HVAC system installation should prioritize filtration and ventilation. Appropriate system planning and installation is essential for improving air quality. https://en.wikipedia.org/wiki/Indoor_air_quality
Condensate Drain This Condensate Drain removes water generated during the cooling operation, preventing damage and keeping system efficiency. Correct drain setup is crucial for successful climate control device and long-term performance. https://en.wikipedia.org/wiki/Condensation
Variable Refrigerant Flow Variable Refrigerant Flow (VRF) systems precisely regulate refrigerant amount to various zones, offering tailored cooling and heating. The technology is vital for creating effective and adaptable climate control in building environments. https://en.wikipedia.org/wiki/Variable_refrigerant_flow
Building Automation System Building Automation System coordinate and optimize the operation of HVAC devices. This results in enhanced climate control and energy efficiency in buildings. https://en.wikipedia.org/wiki/Building_automation
Air Conditioning Heating, ventilation, and air conditioning systems regulate indoor temperature and air quality. Proper installation of these systems is crucial for optimized and effective climate control. https://en.wikipedia.org/wiki/Air_conditioning
Temperature Control Accurate temperature regulation is essential for effective climate control system setup. It ensures optimal performance and comfort in new cooling systems. https://en.wikipedia.org/wiki/Thermostat
Thermistor Thermistors are temperature-sensitive resistors used in weather control systems to measure accurately air temperature. This data helps to regulate system performance, ensuring peak performance and energy efficiency in environmental control arrangements. https://en.wikipedia.org/wiki/Thermistor
Thermocouple Thermocouples are temperature sensors essential for ensuring proper HVAC system installation. They correctly assess temperature, enabling precise adjustments and excellent climate control function. https://en.wikipedia.org/wiki/Thermocouple
Digital Thermostat These devices precisely regulate temperature, improving HVAC system operation. They are important for establishing home climate regulation systems, guaranteeing effective and pleasant environments. https://en.wikipedia.org/wiki/Thermostat
Programmable Thermostat Programmable Thermostats improve HVAC systems by enabling personalized temperature schedules. This results in enhanced energy efficiency and comfort in home cooling setups. https://en.wikipedia.org/wiki/Thermostat
Smart Thermostat Clever thermostat streamline home temperature management by understanding user desires and changing temperatures on their own. They play a vital role in modern HVAC system setups, improving energy savings and comfort. https://en.wikipedia.org/wiki/Smart_thermostat
Bimetallic Strip A Bimetallic Strip, made up of two metals with different expansion rates, curves in response to temperature variations. This property is used in HVAC systems to operate thermostats and regulate heating or cooling processes. https://en.wikipedia.org/wiki/Bimetallic_strip
Capillary Tube Thermostat A Capillary Tube Thermostat accurately regulates temperature in cooling systems through remote sensing. The component is essential for maintaining desired climate control within buildings. https://en.wikipedia.org/wiki/Thermostat
Thermostatic Expansion Valve This Thermostatic Expansion Valve regulates refrigerant stream into the evaporator, keeping optimal cooling. This part is essential for effective operation of refrigeration and air conditioning systems in buildings. https://en.wikipedia.org/wiki/Thermostatic_expansion_valve
Setpoint Setpoint is the target temperature a climate management system aims to reach. It guides the system's performance during climate management configurations to preserve preferred comfort levels. https://en.wikipedia.org/wiki/Setpoint
Temperature Sensor Temperature sensing devices are vital for adjusting heating, ventilation, and cooling systems by monitoring air temperature and ensuring effective climate control. Their data helps improve system performance during climate control installation and maintenance. https://en.wikipedia.org/wiki/Thermometer
Feedback Loop The Feedback Loop assists with controlling temperature during climate control system installation by constantly monitoring and modifying settings. This guarantees peak performance and energy efficiency of installed residential cooling. https://en.wikipedia.org/wiki/Control_theory
Control System Control Systems control temperature, moisture, and air circulation in environmental control setups. These systems guarantee peak comfort and energy savings in temperature-controlled environments. https://en.wikipedia.org/wiki/HVAC_control_system
Thermal Equilibrium Thermal Equilibrium is reached when components attain the same temperature, vital for effective climate control system setup. Proper equilibrium assures optimal performance and energy conservation in installed cooling systems. https://en.wikipedia.org/wiki/Thermal_equilibrium
Thermal Conductivity Thermal Conductivity dictates how effectively materials conduct heat, impacting the cooling system setup. Choosing materials with suitable thermal properties assures peak performance of installed climate control systems. https://en.wikipedia.org/wiki/Thermal_conductivity
Thermal Insulation Thermal insulation minimizes heat flow, assuring efficient cooling by lessening the workload on climate control systems. This boosts energy efficiency and preserves consistent temperatures in buildings. https://en.wikipedia.org/wiki/Thermal_insulation
On Off Control On Off Control keeps wanted temperatures by completely turning on or turning off cooling systems. This simple way is vital for controlling climate within buildings throughout environmental control system setup . https://en.wikipedia.org/wiki/Hysteresis
Pid Controller PID Controllers accurately control temps in HVAC units. This ensures efficient climate control during facility climate setup and operation. https://en.wikipedia.org/wiki/PID_controller
Evaporator This Evaporator absorbs heat from within a space, chilling the air. This is a critical component in temperature control systems designed for home comfort. https://en.wikipedia.org/wiki/Evaporator
Condenser This Condenser unit is a critical part in cooling equipment, transferring heat extracted from the indoor space to the external environment. Its accurate installation is important for efficient climate control system placement and performance. https://en.wikipedia.org/wiki/Condenser_(heat_transfer)
Chlorofluorocarbon Chlorofluorocarbons have been previously common refrigerants that facilitated cooling in numerous building systems. Their part has decreased because of environmental concerns about ozone depletion. https://en.wikipedia.org/wiki/Chlorofluorocarbon
Hydrofluorocarbon Hydrofluorocarbon are coolants typically used in cooling systems for buildings and cars. Their suitable treatment is essential during the establishment of air conditioning systems to avoid environmental harm and ensure efficient operation. https://en.wikipedia.org/wiki/Hydrofluorocarbon
Hydrochlorofluorocarbon Hydrochlorofluorocarbons were once commonly used refrigerants in climate control systems for structures. Their phase-out has resulted in the implementation of more eco-friendly options for new HVAC setups. https://en.wikipedia.org/wiki/Hydrochlorofluorocarbon
Global Warming Potential Global Warming Potential (GWP) shows how much a certain mass of greenhouse gas contributes to global warming over a specified period relative to carbon dioxide. Selecting refrigerants with less GWP is crucial when setting up climate control systems to lessen environmental effects. https://en.wikipedia.org/wiki/Global_warming_potential
Ozone Depletion Ozone Depletion from refrigerants poses environmental dangers. Technicians servicing cooling units must adhere to regulations to prevent further damage. https://en.wikipedia.org/wiki/Ozone_depletion
Phase Change Phase Change of refrigerants are crucial for effectively transferring heat in climate control systems. Evaporation and condensation processes enable cooling by taking in heat indoors and releasing it outdoors. https://en.wikipedia.org/wiki/Phase_transition
Heat Transfer Heat Transfer principles are crucial for effective climate control system setup. Grasping conduction, convection, and radiation guarantees peak system operation and energy efficiency during the process of establishing home cooling. https://en.wikipedia.org/wiki/Heat_transfer
Refrigeration Cycle The cooling process transfers heat, allowing refrigeration in HVAC systems. Proper installation and upkeep ensure effective performance and longevity of these cooling solutions. https://en.wikipedia.org/wiki/Vapor-compression_refrigeration
Environmental Protection Agency EPA regulates refrigerants and sets standards for HVAC system servicing to safeguard the ozone layer and lower greenhouse gas emissions. Technicians working with cooling equipment must be certified to guarantee correct refrigerant management and stop environmental damage. https://en.wikipedia.org/wiki/United_States_Environmental_Protection_Agency
Leak Detection Leak Detection assures the integrity of refrigerant lines after climate control system installation. Identifying and addressing leaks is vital for peak performance and environmental safety of newly installed climate control systems. https://en.wikipedia.org/wiki/Leak_detection_and_repair
Pressure Gauge Pressure Gauge are essential tools for observing refrigerant levels during HVAC system installation. They ensure best performance and prevent damage by verifying pressures are within defined ranges for proper cooling operation. https://en.wikipedia.org/wiki/Pressure_measurement
Expansion Valve This Expansion Valve modulates refrigerant flow in refrigeration systems, enabling efficient heat absorption. It is a vital component for optimal performance in environmental control setups. https://en.wikipedia.org/wiki/Expansion_valve
Cooling Capacity Cooling capacity determines how well a system can reduce the temperature of a room. Selecting the right level is important for optimal performance in environmental control system placement. https://en.wikipedia.org/wiki/Air_conditioning
Refrigerant Recovery Refrigerant Recovery is the method of removing and keeping refrigerants during HVAC system setups. Properly recovering refrigerants prevents environmental damage and ensures effective new cooling equipment installations. https://en.wikipedia.org/wiki/Refrigerant
Refrigerant Recycling Refrigerant Recycling reclaims and recycles refrigerants, lessening environmental impact. This process is crucial when installing climate control systems, guaranteeing responsible handling and preventing ozone depletion. https://en.wikipedia.org/wiki/Refrigerant
Safety Data Sheet Safety Data Sheets (SDS) give vital information on the secure handling and possible hazards of chemicals utilized in cooling system installation. Technicians use SDS data to defend themselves and prevent accidents during HVAC equipment placement and connection. https://en.wikipedia.org/wiki/Safety_data_sheet
Synthetic Refrigerant Synthetic Refrigerants are essential liquids used in refrigeration systems to transfer heat. Their proper management is key for effective climate control setup and maintenance. https://en.wikipedia.org/wiki/Refrigerant
Heat Exchange Heat Exchange is crucial for chilling buildings, permitting efficient temperature regulation. It's a pivotal process in climate control system installation, aiding the transfer of heat to provide comfortable indoor environments. https://en.wikipedia.org/wiki/Heat_exchanger
Cooling Cycle The Cooling Cycle is the basic procedure of heat removal, utilizing refrigerant to take in and release heat. This cycle is vital for effective climate control system installation in buildings. https://en.wikipedia.org/wiki/Vapor-compression_refrigeration
Scroll Compressor Scroll Compressors efficiently compress refrigerant to power cooling systems. They are a vital component for effective temperature regulation in buildings. https://en.wikipedia.org/wiki/Scroll_compressor
Reciprocating Compressor Reciprocating pumps are vital components that compress refrigerant in cooling systems. They aid heat exchange, allowing efficient climate regulation within buildings . https://en.wikipedia.org/wiki/Reciprocating_compressor
Centrifugal Compressor Centrifugal Compressors are critical components that raise refrigerant stress in big climate management systems. They effectively circulate refrigerant, allowing effective refrigeration and heating across extensive areas. https://en.wikipedia.org/wiki/Centrifugal_compressor
Rotary Compressor Rotary Compressors are a vital component in refrigeration systems, employing a spinning mechanism to compress refrigerant. Their effectiveness and small size render them suitable for climate control setups in different applications. https://en.wikipedia.org/wiki/Rotary_compressor
Compressor Motor The Compressor Motor serves as the main force for the refrigeration process, circulating refrigerant. It is vital for correct climate control system setup and operation in buildings. https://en.wikipedia.org/wiki/Air_conditioning
Compressor Oil Compressor Oil lubricates and seals moving parts inside a systems' compressor, guaranteeing efficient refrigerant pressurization for suitable climate regulation. It is important to choose the right type of oil throughout system installation to ensure durability and peak performance of the refrigeration unit. https://en.wikipedia.org/wiki/Lubricant
Pressure Switch A Pressure Switch observes refrigerant levels, guaranteeing the system operates securely. It prevents harm by shutting down the cooling apparatus if pressure falls beyond the acceptable spectrum. https://en.wikipedia.org/wiki/Pressure_sensor
Compressor Relay A Compressor Relay is an electrical device that controls the compressor motor in cooling systems. It ensures the compressor starts and stops properly, allowing effective temperature regulation within climate control systems. https://en.wikipedia.org/wiki/Relay
Suction Line A Suction Line, a critical part in cooling systems, moves refrigerant vapor from the evaporator back the compressor. Correct sizing and insulation of the line are critical for effective system operation during climate control installation. https://en.wikipedia.org/wiki/Air_conditioning
Discharge Line The discharge line transports hot, high-pressure refrigerant gas from the compressor to the condenser. Proper dimensioning and installation of this Discharge Line are essential for ideal cooling system configuration. https://en.wikipedia.org/wiki/Refrigeration
Compressor Capacity Compressor Capacity dictates the cooling power of a system for indoor temperature control. Choosing the right size ensures efficient temperature regulation during climate control setup. https://en.wikipedia.org/wiki/Air_conditioning
Cooling Load Cooling Load is the volume of heat that needs to be taken away from a area to keep a desired temperature. Correct cooling load calculation is crucial for appropriate HVAC system setup and size. https://en.wikipedia.org/wiki/Heat_transfer
Air Conditioning Repair Air Conditioning Repair ensures systems operate optimally after they are installed. It's vital for maintaining efficient climate control systems put in place. https://en.wikipedia.org/wiki/Air_conditioning
Refrigerant Leak Refrigerant Leakage decrease cooling efficiency and can result in equipment failure. Fixing these leakages is essential for correct climate control system installation, assuring optimal performance and lifespan. https://en.wikipedia.org/wiki/Air_conditioning
Seer Rating SEER score represents an HVAC system's cooling performance, affecting long-term energy expenses. Higher SEER numbers mean greater energy savings when establishing climate control. https://en.wikipedia.org/wiki/Seasonal_energy_efficiency_ratio
Hspf Rating HSPF rating demonstrates the heating efficiency of heat pumps. Increased ratings indicate better energy efficiency during climate control installation. https://en.wikipedia.org/wiki/Seasonal_energy_efficiency_ratio
Preventative Maintenance Preventative servicing makes sure HVAC systems work effectively and reliably after setup. Regular maintenance lessens failures and lengthens the lifespan of climate control systems. https://en.wikipedia.org/wiki/Preventive_maintenance
Airflow Airflow assures effective cooling and heating distribution across a building. Proper Airflow is essential for peak performance and comfort in climate control systems. https://en.wikipedia.org/wiki/Air_conditioning
Electrical Components Electrical Components are vital for powering and managing systems that govern indoor climate. They assure suitable functioning, safety, and efficiency in heating and cooling arrangements. https://en.wikipedia.org/wiki/Air_conditioning
Refrigerant Charging Refrigerant Charging is the procedure of adding the right quantity of refrigerant to a cooling system. This ensures peak operation and efficiency when configuring climate control units. https://en.wikipedia.org/wiki/Air_conditioning
System Diagnosis The System Diagnosis process pinpoints possible issues prior to, while, and after HVAC system setup. It ensures peak operation and hinders upcoming problems in climate control setups. https://en.wikipedia.org/wiki/Fault_detection_and_isolation
Hvac System HVAC systems regulate temperature, humidity, and atmosphere quality in buildings. They are essential for setting up climate-control solutions in domestic and business areas. https://en.wikipedia.org/wiki/HVAC
Ductless Air Conditioning Ductless systems provide targeted temperature control without extensive ductwork. They make easier temperature control installation in spaces lacking existing duct systems. https://en.wikipedia.org/wiki/Air_conditioning
Window Air Conditioner Window air conditioners are self-contained devices placed in panes to chill single rooms. They offer a direct method for localized climate control inside a building. https://en.wikipedia.org/wiki/Air_conditioning
Portable Air Conditioner Portable Air Conditioner units provide a versatile temperature-control option for spaces lacking central systems. They can also offer temporary temperature regulation during HVAC system configurations. https://en.wikipedia.org/wiki/Air_conditioning
System Inspection System check ensures correct installation of cooling systems by verifying component integrity and compliance to installation standards. This procedure assures effective operation and avoids future malfunctions in climate control systems. https://en.wikipedia.org/wiki/Inspection
Coil Cleaning Cleaning coils ensures efficient heat transfer, vital for optimal system performance. This maintenance procedure is essential for proper setup of climate control systems. https://en.wikipedia.org/wiki/Air_conditioning
Refrigerant Recharge Refrigerant Recharge is vital for reinstating cooling ability in cooling systems. It ensures maximum performance and lifespan of brand new environmental regulation units. https://en.wikipedia.org/wiki/Air_conditioning
Capacitor Capacitors provide the necessary energy increase to start and operate motors within climate control systems. Their correct function guarantees efficient and dependable operation of the cooling unit. https://en.wikipedia.org/wiki/Capacitor
Contactor A Contactor is an electrical switch which controls power for the outdoor unit's components. It enables the cooling system to turn on when needed. https://en.wikipedia.org/wiki/Contactor
Blower Motor The Blower Motor circulates air through the ductwork, enabling efficient heating and cooling distribution within a building. It's a key component for indoor climate control systems, ensuring stable temperature and airflow. https://en.wikipedia.org/wiki/Air_conditioning
Overheating Overheating can severely hamper the functionality of recently installed climate control systems. Technicians must fix this issue to ensure effective and reliable cooling operation. https://en.wikipedia.org/wiki/Air_conditioning
Troubleshooting Fixing identifies and resolves issues that arise during climate control system installation. Sound fixing ensures best system performance and prevents future issues during building cooling appliance installation. https://en.wikipedia.org/wiki/Troubleshooting
Refrigerant Reclaiming Refrigerant Reclaiming retrieves and reprocesses used refrigerants. This procedure is vital for environmentally responsible climate control system setup. https://en.wikipedia.org/wiki/Refrigerant
Global Warming Global Warming increases the demand or for cooling systems, requiring demanding more frequent setups installations. This heightened increased need drives fuels innovation in energy-efficient power-saving climate control solutions options. https://en.wikipedia.org/wiki/Global_warming
Montreal Protocol This Montreal Protocol phases out ozone-depleting substances used in cooling systems. This shift necessitates using alternative refrigerants in new climate control setups. https://en.wikipedia.org/wiki/Montreal_Protocol
Greenhouse Gas Greenhouse Gas trap warmth, impacting the power efficiency and environmental impact of climate control system configurations. Selecting refrigerants with reduced global warming potential is vital for sustainable weather control implementation. https://en.wikipedia.org/wiki/Greenhouse_gas
Cfc CFCs were once vital refrigerants in cooling systems for buildings and vehicles. Their use has been phased out due to their damaging impact on the ozone layer. https://en.wikipedia.org/wiki/Chlorofluorocarbon
Hcfc HCFCs were previously typical refrigerants utilized in refrigeration systems for structures and vehicles. They eased the process of setting up climate control systems, but are now being discontinued due to their ozone-depleting properties. https://en.wikipedia.org/wiki/Chlorodifluoromethane
Hfc HFCs are frequently used refrigerants in refrigeration systems for buildings. Their proper handling is crucial during the installation of these systems to reduce environmental impact. https://en.wikipedia.org/wiki/Hydrocarbon_refrigerant
Refrigerant Oil Cooling lubricant lubricates the pump in cooling systems, ensuring seamless operation and longevity. It's essential for the proper operation of climate control setups. https://en.wikipedia.org/wiki/Lubricant
Phase-Out Phase-Out refers to the gradual reduction of certain refrigerants with high global warming capacity. This impacts the choice and servicing of climate control systems in buildings. https://en.wikipedia.org/wiki/Ozone_depletion
Gwp GWP indicates a refrigerant's ability to warm the planet if released. Lower GWP refrigerants are progressively preferred in environmentally conscious HVAC system setups. https://en.wikipedia.org/wiki/Global_warming_potential
Odp Odp refrigerants damage the ozone layer, impacting regulations for refrigeration system setup. Installers must use environmentally friendly alternatives during climate control equipment installation. https://en.wikipedia.org/wiki/Ozone_depletion
Ashrae ASHRAE defines standards and recommendations for HVAC systems installation. These criteria ensure optimized and secure environmental control systems application in buildings. https://en.wikipedia.org/wiki/ASHRAE
Hvac Systems Hvac Systems offer temperature and air condition control for indoor environments. They are essential for setting up cooling systems in buildings. https://en.wikipedia.org/wiki/HVAC
Refrigerant Leaks Refrigerant Leaks lower cooling system efficiency and can harm the environment. Suitable procedures during climate control unit setup are vital to avoid these leaks and guarantee best performance. https://en.wikipedia.org/wiki/Air_conditioning
Hvac Repair Costs Hvac Repair Costs can greatly influence choices about upgrading to a new climate control system. Unforeseen repair costs may prompt homeowners to put money in a full home comfort setup for long-term savings. https://en.wikipedia.org/wiki/Air_conditioning
Hvac Installation Hvac Installation involves installing warming, air flow, and cooling units. This is essential for allowing efficient climate control inside structures. https://en.wikipedia.org/wiki/Air_conditioning
Hvac Maintenance Hvac Maintenance guarantees effective operation and prolongs system lifespan. Proper maintenance is vital for smooth climate control system setups. https://en.wikipedia.org/wiki/Heating,_ventilation,_and_air_conditioning
Hvac Troubleshooting Hvac Troubleshooting identifies and resolves issues in heating, ventilation, and cooling systems. It ensures optimal operation during climate control unit installation and operation. https://en.wikipedia.org/wiki/Air_conditioning
Zoning Systems Zoning schemes split a building into distinct areas for personalized temperature control. This strategy enhances well-being and energy efficiency during HVAC setup. https://en.wikipedia.org/wiki/Heating,_ventilation,_and_air_conditioning
Compressor Types Different Compressor Types are vital components for efficient climate control systems. Their choice significantly impacts system efficiency and performance in environmental comfort uses. https://en.wikipedia.org/wiki/Air_compressor
Compressor Efficiency Compressor Efficiency is vital, dictating how effectively the system cools a room for a given energy input. Optimizing this efficiency directly impacts cooling system setup costs and long-term operational expenses. https://en.wikipedia.org/wiki/Centrifugal_compressor
Compressor Overheating Compressor Overheating can severely damage the unit's heart, leading to system malfunction. Proper installation guarantees sufficient air flow and refrigerant amounts, preventing this issue in climate control system installations. https://en.wikipedia.org/wiki/Air_conditioning
Compressor Failure Compressor malfunction halts the cooling process, demanding expert service during climate control system configurations. A defective compressor compromises the entire system's performance and lifespan when integrating it into a building. https://en.wikipedia.org/wiki/Air_conditioning
Overload Protector An protects the compressor motor from getting too hot during climate control system installation. It stops damage by automatically disconnecting power when too much current or temperature is detected. https://en.wikipedia.org/wiki/Circuit_breaker
Fan Motor Fan motors circulate air across evaporator and condenser coils, a crucial process for effective climate control system installation. They aid heat transfer, guaranteeing optimal cooling and heating operation within the designated space. https://en.wikipedia.org/wiki/Fan
Refrigerant Lines Refrigerant Lines are essential components that join the inside and outdoor units, moving refrigerant to facilitate cooling. Their proper installation is vital for efficient and productive climate control system setup. https://en.wikipedia.org/wiki/Air_conditioning
Condensing Unit The Condensing Unit is the outdoor component in a cooling system. The unit rejects heat from the refrigerant, allowing indoor temperature regulation. https://en.wikipedia.org/wiki/HVAC
Heat Rejection Heat Rejection is critical for cooling systems to effectively remove excess heat from a cooled area. Correct Heat Rejection guarantees optimal performance and lifespan of climate control systems. https://en.wikipedia.org/wiki/Heat_sink
System Efficiency System Efficiency is vital for reducing energy consumption and operational expenses. Improving efficiency during climate control setup guarantees long-term savings and environmental benefits. https://en.wikipedia.org/wiki/Energy_efficiency
Pressure Drop Pressure decrease is the decrease in fluid pressure as it moves through a setup, impacting airflow in climate control setups. Properly managing pressure decrease is vital for optimal performance and efficiency in climate control systems. https://en.wikipedia.org/wiki/Pressure_drop
Subcooling Subcooling ensures peak system performance by chilling the refrigerant below its condensing temperature. This process stops flash gas, increasing refrigeration power and efficiency throughout HVAC system setup. https://en.wikipedia.org/wiki/Superheating_and_subcooling
Superheat Superheat makes sure that just steam refrigerant goes into the compressor, preventing damage. It's important to determine superheat during HVAC system installation to maximize cooling capabilities and efficiency. https://en.wikipedia.org/wiki/Superheating
Refrigerant Charge Refrigerant Charge is the amount of refrigerant in a unit, vital for peak cooling operation. Proper charging assures effective heat exchange and prevents damage during climate control setup. https://en.wikipedia.org/wiki/Air_conditioning
Corrosion Rust impairs metallic components, possibly causing leakage and system malfunctions. Protecting against Corrosion is vital for keeping the efficiency and longevity of climate control systems. https://en.wikipedia.org/wiki/Corrosion
Fins Fins increase the surface area of coils, enhancing heat transfer effectiveness. This is essential for peak performance in HVAC system installations. https://en.wikipedia.org/wiki/Heat_sink
Copper Tubing Copper piping is vital for refrigerant transport in climate control systems owing to its long-lasting nature and effective heat transfer. Its dependable connections assure correct system operation during establishment of climate units. https://en.wikipedia.org/wiki/Plumbing
Aluminum Tubing Aluminum piping is vital for transferring refrigerant in climate control systems. Its lightweight and rustproof properties render them ideal for connecting internal and external units in HVAC setups. https://en.wikipedia.org/wiki/Air_conditioning
Repair Costs Sudden maintenance can greatly impact the overall expense of setting up a new climate control system. Budgeting for potential Repair Costs ensures a more accurate and comprehensive cost assessment when implementing such a system. https://en.wikipedia.org/wiki/Air_conditioning

Bold City Heating & Air

4.9(1,687)

Air conditioning repair service·

Overview

Reviews

About

Directions

Save

Nearby

Send to phone

Share

Book online

8400 Baymeadows Way Suite 1, Jacksonville, FL 32256, United States

Open 24 hours

boldcityac.com

boldcityac.com

+1 904-379-1648

6C9C+2H Baymeadows Center, Jacksonville, FL, USA

Identifies as veteran-owned

Your Maps activity

Add a label

Suggest an edit

From the owner

That Florida sun? It doesn’t play. Prepping your HVAC system now means cool breezes later. Clean filters ✔️ Check refrigerant ✔️ Program thermostats ✔️ 🔥 Be heatwave-ready with Bold City Heating & Air! Book your seasonal check-up and beat the summer rush!

3 days ago

Updates from customers

Randolph and the crew were so nice and they did a AWESOME Job of putting in new ductwork & installation. Great group of guys. RT would answer any questions you had. Felt comfortable with them in my home. From the girl at the front desk to everyone involved Thank You!! I Appreciate you all. I definitely would recommend this company to anyone 😊

a year ago

Popular times

Mondays

6a

9a

12p

3p

6p

9p

12a

3a

Photos & videos

All

Latest11 days ago

Videos

Inside

By owner

Street View & 360°

Add photos & videos

Questions and answers

Why would an AC heater not be turning on?

An AC heater may not turn on due to power issues like tripped circuit breakers, blown fuses, or loose wiring, thermostat problems such as dead batteries, incorrect settings, or a faulty unit, or safety features engaging due to clogged filte …

6 months ago

More questions

Ask the community

Review summary

5

4

3

2

1

4.9

1,687 reviews

"Best price and service I have ever had with an HVAC partner"

"Excellent workmanship, knowledgeable, friendly staff from owner to employees."

"They’ve been charging the service contract now the unit does not work."

Write a review

Reviews

Sort

All

company233

job98

call55

ducts51

+6

Abe Fernandez

11 reviews · 11 photos

a week ago

New

DO NOT HIRE THIS COMPANY. TOOK THEM TO COURT AND WON!

We hired Bold City Heating and Air to replace all our air ducts, and the work they performed was shockingly defective. After the job was done we noticed that … More

+4

Like

Share

Kenneth Jefferson

5 reviews · 3 photos

2 months ago

Jacob; Ben & Josie were very professional and efficient. If I could give 10 stars I would. Very knowledgeable and they kept me informed throughout the whole process of my complete AC installation. The entire process was easy with Bold City … More

Like

Share

Response from the owner 2 months ago

Thank you so much for your fantastic 5-star review, Kenneth & Monique! We're thrilled to hear that Jacob, Ben, and Josie provided you with professional and efficient service during your complete AC installation. At Bold City Heating & Air, … More

WILLIAM MOSIER

2 reviews · 4 photos

a month ago

Crew showed up on time got done earlier than expected. Everything was clean. They were quiet. I was able to work throughout the day while they were installing. Couldn’t have been more perfect. Happy with the service.

Like

Share

Response from the owner a month ago

Thank you so much for your fantastic 5-star review, William! We're thrilled to hear that our team at Bold City Heating & Air made the installation process seamless and respectful of your work day. We appreciate your support and are glad you’re happy with our service! Let us know if you need anything else in the future!

More reviews (1,684)

People also search for

Air McCall

4.9(1,471)

HVAC contractor

Indoor Quality Heating & Air

4.7(43)

HVAC contractor

Ball Air Conditioning, Inc.

4.6(62)

Air conditioning contractor

Hammond Heating & Air Conditioning

4.9(1,098)

HVAC contractor

Florida Home Air Conditioning

4.3(2,883)

Air conditioning repair service

Web results

About this data

Bold City Heating & Air

HVAC & Air Conditioning Repair in Jacksonville, FL

Bold City offers premium HVAC service and competitive pricing to the Jacksonville, Jacksonville Beaches and Ponte Vedra areas.

24/7 Fast and Reliable. Jacksonville Grown. Family Owned & Operated.

Bold City Heating & Air Mascot

Summer HVAC Tune Up for Just $89

Get your system ready for the heat!

We’ll inspect, clean, and fine tune your HVAC to boost efficiency, prevent breakdowns, and keep you cool all season long.

Jacksonville’s Best HVAC Company


At Bold City Heating & Air, we offer our customers exceptional service when it comes to HVAC in Jacksonville, FL.

From heating and cooling repairs to energy-efficient HVAC installations that save you money, we do it all. When we opened our family-owned business in 2016, we knew we wanted to be the best around and that’s a passion that still stands.

From the moment you call us to the moment we carry out our work, you can depend on us. We believe in clear upfront pricing, no hidden costs, and the highest level of workmanship. With our NATE-certified technicians and Energy Star systems we give you the perfect combination of choice, value, and customer care.
“Experience the Bold Difference” that is Bold City Heating & Air by calling us today!

We Believe In:

Icon representing Clear Upfront Pricing

Clear Upfront Pricing

Icon representing No Hidden Costs

No Hidden Costs

Icon representing High-Level Workmanship

High-Level Workmanship

Trusted Heating and Air Pros in Jacksonville


When it comes to heating and air services in Jacksonville, we offer all the services you need under one roof. But that’s not where our story ends.

From your HVAC system to your ducts and indoor air quality we offer a complete end-to-end solution. Our team is at the heart of everything we do. Our continuous program of education and training ensures our technicians are the best they can be. It also means our entire team stays up to date with the latest systems and technology. From our Energy Star systems to our whole-house approach, you can depend on every service and product we have to offer.

Our educated and experienced HVAC technicians specialize in a broad range of air conditioning, heating & indoor air quality solutions. We are dedicated to finding the right fit for your home or business. Our broad range of expertise ensures a solution to every challenge.

Satisfaction Guaranteed

Prioritizing satisfaction, Bold City Heating & Air exemplifies customer service.

Our Team Will:

  • Keep Your Informed
  • Target Your Goals
  • Provide Honest Answers

Services

Cooling
Heating
Duct Cleaning
Maintenance
New System Installation

Number One For Heating & Cooling


Keeping you comfortable is our top priority!

When you need an HVAC contractor backed by generations of experience and who truly cares about your satisfaction, turn to Bold City Heating & Air. From air conditioning repairs to the installation of a new energy-efficient heating system, you can depend on our team. We’ll get to you as quickly as we can to solve any problem you might be experiencing.

If you need help with HVAC installation or replacement, we’ll recommend the perfect system and provide you with a competitive quote. We’ll help you to save money on your energy costs going forward and can even help with financing on approved credit.

Jacksonville Grown. Family Owned & Operated.

See What Our Customers Are Saying About Us!


5 stars

Recently moved here from MD and was not familiar with the heating/AC unit. Bold City, especially Sam Powel, has been VERY helpful. In our short time here in FL, we have recommended Bold City to acquaintances numerous times, and will continue to do so.

Paul G.

5 stars

Another excellent job by Bold City. Bryan was on time, thorough, explained his analysis and solution, and completed the job. He demonstrated knowledge and expertise while providing a high level of customer service. Well done!!

John L.

5 stars

Recently moved here from MD and was not familiar with the heating/AC unit. Bold City, especially Sam Powel, has been VERY helpful. In our short time here in FL, we have recommended Bold City to acquaintances numerous times, and will continue to do so.

Paul G.

5 stars

Another excellent job by Bold City. Bryan was on time, thorough, explained his analysis and solution, and completed the job. He demonstrated knowledge and expertise while providing a high level of customer service. Well done!!

John L.

5 stars

Recently moved here from MD and was not familiar with the heating/AC unit. Bold City, especially Sam Powel, has been VERY helpful. In our short time here in FL, we have recommended Bold City to acquaintances numerous times, and will continue to do so.

Paul G.

An HVAC Team You Can Trust


When you’re looking for an HVAC company that you can count on, look no further than Bold City Heating & Air.

Why not try out our award-winning service for yourself? We promise to never give you the upsell. Our technicians don’t get paid commission and we don’t focus on profit margins. We know that if we give our customers the best service, our profits will look after themselves. Whether you’re looking for heating and cooling repairs in Jacksonville or you need HVAC installation or maintenance, speak to our friendly family-owned team.

We’re proud to offer our high quality HVAC services to the residents of Jacksonville. Contact our team at Bold City Heating & Air today and experience our great service for yourself!

Contact Your Bold City Specialist Today

Bold City Heating & Air ✔️

🏠
Current address

8400 Baymeadows Way Suite 1,Jacksonville, FL 32256,United States

📞
Phone

+19043791648

✔️
Business status

Claimed

📍
Latitude/Longitude

30.217562,-81.578579

🔖
Categories

Air conditioning repair service

🌎
Place ID

ChIJNyAf-ffJ5YgRYOdPsLEKe30

📝
Knowledge Panel ID (KG ID)

/g/11g6n8dppf

CID Number

9041832435159918432

🏢
Business Profile ID

1926681825581721738

Other GMB details

External audit links

Below you will find links to external resources for additional information. These are external sites and is in no way related to GMB Everywhere.
SEO audit links
Website audit links

Air conditioning

From Wikipedia, the free encyclopedia
This article is about cooling of air. For the Curved Air album, see Air Conditioning (album). For a similar device capable of both cooling and heating, see Heat pump.
"a/c" redirects here. For the abbreviation used in banking and book-keeping, see Account (disambiguation). For other uses, see AC.
There are various types of air conditioners. Popular examples include: Window-mounted air conditioner (China, 2023); Ceiling-mounted cassette air conditioner (China, 2023); Wall-mounted air conditioner (Japan, 2020); Ceiling-mounted console (Also called ceiling suspended) air conditioner (China, 2023); and portable air conditioner (Vatican City, 2018).

Air conditioning, often abbreviated as A/C (US) or air con (UK),[1] is the process of removing heat from an enclosed space to achieve a more comfortable interior temperature and in some cases also controlling the humidity of internal air. Air conditioning can be achieved using a mechanical 'air conditioner' or through other methods, including passive cooling and ventilative cooling.[2][3] Air conditioning is a member of a family of systems and techniques that provide heating, ventilation, and air conditioning (HVAC).[4] Heat pumps are similar in many ways to air conditioners but use a reversing valve, allowing them to both heat and cool an enclosed space.[5]

Air conditioners, which typically use vapor-compression refrigeration, range in size from small units used in vehicles or single rooms to massive units that can cool large buildings.[6] Air source heat pumps, which can be used for heating as well as cooling, are becoming increasingly common in cooler climates.

Air conditioners can reduce mortality rates due to higher temperature.[7] According to the International Energy Agency (IEA) 1.6 billion air conditioning units were used globally in 2016.[8] The United Nations called for the technology to be made more sustainable to mitigate climate change and for the use of alternatives, like passive cooling, evaporative cooling, selective shading, windcatchers, and better thermal insulation.

History

[edit]

Air conditioning dates back to prehistory.[9] Double-walled living quarters, with a gap between the two walls to encourage air flow, were found in the ancient city of Hamoukar, in modern Syria.[10] Ancient Egyptian buildings also used a wide variety of passive air-conditioning techniques.[11] These became widespread from the Iberian Peninsula through North Africa, the Middle East, and Northern India.[12]

Passive techniques remained widespread until the 20th century when they fell out of fashion and were replaced by powered air conditioning. Using information from engineering studies of traditional buildings, passive techniques are being revived and modified for 21st-century architectural designs.[13][12]

An array of air conditioner condenser units outside a commercial office building

Air conditioners allow the building's indoor environment to remain relatively constant, largely independent of changes in external weather conditions and internal heat loads. They also enable deep plan buildings to be created and have allowed people to live comfortably in hotter parts of the world.[14]

Development

[edit]

Preceding discoveries

[edit]

In 1558, Giambattista della Porta described a method of chilling ice to temperatures far below its freezing point by mixing it with potassium nitrate (then called "nitre") in his popular science book Natural Magic.[15][16][17] In 1620, Cornelis Drebbel demonstrated "Turning Summer into Winter" for James I of England, chilling part of the Great Hall of Westminster Abbey with an apparatus of troughs and vats.[18] Drebbel's contemporary Francis Bacon, like della Porta a believer in science communication, may not have been present at the demonstration, but in a book published later the same year, he described it as "experiment of artificial freezing" and said that "Nitre (or rather its spirit) is very cold, and hence nitre or salt when added to snow or ice intensifies the cold of the latter, the nitre by adding to its cold, but the salt by supplying activity to the cold of the snow."[15]

In 1758, Benjamin Franklin and John Hadley, a chemistry professor at the University of Cambridge, conducted experiments applying the principle of evaporation as a means to cool an object rapidly. Franklin and Hadley confirmed that the evaporation of highly volatile liquids (such as alcohol and ether) could be used to drive down the temperature of an object past the freezing point of water. They experimented with the bulb of a mercury-in-glass thermometer as their object. They used a bellows to speed up the evaporation. They lowered the temperature of the thermometer bulb down to −14 °C (7 °F) while the ambient temperature was 18 °C (64 °F). Franklin noted that soon after they passed the freezing point of water 0 °C (32 °F), a thin film of ice formed on the surface of the thermometer's bulb and that the ice mass was about 6 mm (1⁄4 in) thick when they stopped the experiment upon reaching −14 °C (7 °F). Franklin concluded: "From this experiment, one may see the possibility of freezing a man to death on a warm summer's day."[19]

The 19th century included many developments in compression technology. In 1820, English scientist and inventor Michael Faraday discovered that compressing and liquefying ammonia could chill air when the liquefied ammonia was allowed to evaporate.[20] In 1842, Florida physician John Gorrie used compressor technology to create ice, which he used to cool air for his patients in his hospital in Apalachicola, Florida. He hoped to eventually use his ice-making machine to regulate the temperature of buildings.[20][21] He envisioned centralized air conditioning that could cool entire cities. Gorrie was granted a patent in 1851,[22] but following the death of his main backer, he was not able to realize his invention.[23] In 1851, James Harrison created the first mechanical ice-making machine in Geelong, Australia, and was granted a patent for an ether vapor-compression refrigeration system in 1855 that produced three tons of ice per day.[24] In 1860, Harrison established a second ice company. He later entered the debate over competing against the American advantage of ice-refrigerated beef sales to the United Kingdom.[24]

First devices

[edit]
Willis Carrier, who is credited with building the first modern electrical air conditioning unit

Electricity made the development of effective units possible. In 1901, American inventor Willis H. Carrier built what is considered the first modern electrical air conditioning unit.[25][26][27][28] In 1902, he installed his first air-conditioning system, in the Sackett-Wilhelms Lithographing & Publishing Company in Brooklyn, New York.[29] His invention controlled both the temperature and humidity, which helped maintain consistent paper dimensions and ink alignment at the printing plant. Later, together with six other employees, Carrier formed The Carrier Air Conditioning Company of America, a business that in 2020 employed 53,000 people and was valued at $18.6 billion.[30][31]

In 1906, Stuart W. Cramer of Charlotte, North Carolina, was exploring ways to add moisture to the air in his textile mill. Cramer coined the term "air conditioning" in a patent claim which he filed that year, where he suggested that air conditioning was analogous to "water conditioning", then a well-known process for making textiles easier to process.[32] He combined moisture with ventilation to "condition" and change the air in the factories; thus, controlling the humidity that is necessary in textile plants. Willis Carrier adopted the term and incorporated it into the name of his company.[33]

Domestic air conditioning soon took off. In 1914, the first domestic air conditioning was installed in Minneapolis in the home of Charles Gilbert Gates. It is, however, possible that the considerable device (c. 2.1 m × 1.8 m × 6.1 m; 7 ft × 6 ft × 20 ft) was never used, as the house remained uninhabited[20] (Gates had already died in October 1913.)

In 1931, H.H. Schultz and J.Q. Sherman developed what would become the most common type of individual room air conditioner: one designed to sit on a window ledge. The units went on sale in 1932 at US$10,000 to $50,000 (the equivalent of $200,000 to $1,200,000 in 2024.)[20] A year later, the first air conditioning systems for cars were offered for sale.[34] Chrysler Motors introduced the first practical semi-portable air conditioning unit in 1935,[35] and Packard became the first automobile manufacturer to offer an air conditioning unit in its cars in 1939.[36]

Further development

[edit]

Innovations in the latter half of the 20th century allowed more ubiquitous air conditioner use. In 1945, Robert Sherman of Lynn, Massachusetts, invented a portable, in-window air conditioner that cooled, heated, humidified, dehumidified, and filtered the air.[37] The first inverter air conditioners were released in 1980–1981.[38][39]

In 1954, Ned Cole, a 1939 architecture graduate from the University of Texas at Austin, developed the first experimental "suburb" with inbuilt air conditioning in each house. 22 homes were developed on a flat, treeless track in northwest Austin, Texas, and the community was christened the 'Austin Air-Conditioned Village.' The residents were subjected to a year-long study of the effects of air conditioning led by the nation’s premier air conditioning companies, builders, and social scientists. In addition, researchers from UT’s Health Service and Psychology Department studied the effects on the "artificially cooled humans." One of the more amusing discoveries was that each family reported being troubled with scorpions, the leading theory being that scorpions sought cool, shady places. Other reported changes in lifestyle were that mothers baked more, families ate heavier foods, and they were more apt to choose hot drinks.[40][41]

Air conditioner adoption tends to increase above around $10,000 annual household income in warmer areas.[42] Global GDP growth explains around 85% of increased air condition adoption by 2050, while the remaining 15% can be explained by climate change.[42]

As of 2016 an estimated 1.6 billion air conditioning units were used worldwide, with over half of them in China and USA, and a total cooling capacity of 11,675 gigawatts.[8][43] The International Energy Agency predicted in 2018 that the number of air conditioning units would grow to around 4 billion units by 2050 and that the total cooling capacity would grow to around 23,000 GW, with the biggest increases in India and China.[8] Between 1995 and 2004, the proportion of urban households in China with air conditioners increased from 8% to 70%.[44] As of 2015, nearly 100 million homes, or about 87% of US households, had air conditioning systems.[45] In 2019, it was estimated that 90% of new single-family homes constructed in the US included air conditioning (ranging from 99% in the South to 62% in the West).[46][47]

Operation

[edit]

Operating principles

[edit]
A simple stylized diagram of the refrigeration cycle: 1) condensing coil, 2) expansion valve, 3) evaporator coil, 4) compressor

Cooling in traditional air conditioner systems is accomplished using the vapor-compression cycle, which uses a refrigerant's forced circulation and phase change between gas and liquid to transfer heat.[48][49] The vapor-compression cycle can occur within a unitary, or packaged piece of equipment; or within a chiller that is connected to terminal cooling equipment (such as a fan coil unit in an air handler) on its evaporator side and heat rejection equipment such as a cooling tower on its condenser side. An air source heat pump shares many components with an air conditioning system, but includes a reversing valve, which allows the unit to be used to heat as well as cool a space.[50]

Air conditioning equipment will reduce the absolute humidity of the air processed by the system if the surface of the evaporator coil is significantly cooler than the dew point of the surrounding air. An air conditioner designed for an occupied space will typically achieve a 30% to 60% relative humidity in the occupied space.[51]

Most modern air-conditioning systems feature a dehumidification cycle during which the compressor runs. At the same time, the fan is slowed to reduce the evaporator temperature and condense more water. A dehumidifier uses the same refrigeration cycle but incorporates both the evaporator and the condenser into the same air path; the air first passes over the evaporator coil, where it is cooled[52] and dehumidified before passing over the condenser coil, where it is warmed again before it is released back into the room.[citation needed]

Free cooling can sometimes be selected when the external air is cooler than the internal air. Therefore, the compressor does not need to be used, resulting in high cooling efficiencies for these times. This may also be combined with seasonal thermal energy storage.[53]

Heating

[edit]
Main article: Heat pump

Some air conditioning systems can reverse the refrigeration cycle and act as an air source heat pump, thus heating instead of cooling the indoor environment. They are also commonly referred to as "reverse cycle air conditioners". The heat pump is significantly more energy-efficient than electric resistance heating, because it moves energy from air or groundwater to the heated space and the heat from purchased electrical energy. When the heat pump is in heating mode, the indoor evaporator coil switches roles and becomes the condenser coil, producing heat. The outdoor condenser unit also switches roles to serve as the evaporator and discharges cold air (colder than the ambient outdoor air).

Most air source heat pumps become less efficient in outdoor temperatures lower than 4 °C or 40 °F.[54] This is partly because ice forms on the outdoor unit's heat exchanger coil, which blocks air flow over the coil. To compensate for this, the heat pump system must temporarily switch back into the regular air conditioning mode to switch the outdoor evaporator coil back to the condenser coil, to heat up and defrost. Therefore, some heat pump systems will have electric resistance heating in the indoor air path that is activated only in this mode to compensate for the temporary indoor air cooling, which would otherwise be uncomfortable in the winter.

Newer models have improved cold-weather performance, with efficient heating capacity down to −14 °F (−26 °C).[55][54][56] However, there is always a chance that the humidity that condenses on the heat exchanger of the outdoor unit could freeze, even in models that have improved cold-weather performance, requiring a defrosting cycle to be performed.

The icing problem becomes much more severe with lower outdoor temperatures, so heat pumps are sometimes installed in tandem with a more conventional form of heating, such as an electrical heater, a natural gas, heating oil, or wood-burning fireplace or central heating, which is used instead of or in addition to the heat pump during harsher winter temperatures. In this case, the heat pump is used efficiently during milder temperatures, and the system is switched to the conventional heat source when the outdoor temperature is lower.

Performance

[edit]

The coefficient of performance (COP) of an air conditioning system is a ratio of useful heating or cooling provided to the work required.[57][58] Higher COPs equate to lower operating costs. The COP usually exceeds 1; however, the exact value is highly dependent on operating conditions, especially absolute temperature and relative temperature between sink and system, and is often graphed or averaged against expected conditions.[59] Air conditioner equipment power in the U.S. is often described in terms of "tons of refrigeration", with each approximately equal to the cooling power of one short ton (2,000 pounds (910 kg) of ice melting in a 24-hour period. The value is equal to 12,000 BTUIT per hour, or 3,517 watts.[60] Residential central air systems are usually from 1 to 5 tons (3.5 to 18 kW) in capacity.[citation needed]

The efficiency of air conditioners is often rated by the seasonal energy efficiency ratio (SEER), which is defined by the Air Conditioning, Heating and Refrigeration Institute in its 2008 standard AHRI 210/240, Performance Rating of Unitary Air-Conditioning and Air-Source Heat Pump Equipment.[61] A similar standard is the European seasonal energy efficiency ratio (ESEER).[citation needed]

Efficiency is strongly affected by the humidity of the air to be cooled. Dehumidifying the air before attempting to cool it can reduce subsequent cooling costs by as much as 90 percent. Thus, reducing dehumidifying costs can materially affect overall air conditioning costs.[62]

Control system

[edit]

Wireless remote control

[edit]
Main articles: Remote control and Infrared blaster
A wireless remote controller
The infrared transmitting LED on the remote
The infrared receiver on the air conditioner

This type of controller uses an infrared LED to relay commands from a remote control to the air conditioner. The output of the infrared LED (like that of any infrared remote) is invisible to the human eye because its wavelength is beyond the range of visible light (940 nm). This system is commonly used on mini-split air conditioners because it is simple and portable. Some window and ducted central air conditioners uses it as well.

Wired controller

[edit]
Main article: Thermostat
Several wired controllers (Indonesia, 2024)

A wired controller, also called a "wired thermostat," is a device that controls an air conditioner by switching heating or cooling on or off. It uses different sensors to measure temperatures and actuate control operations. Mechanical thermostats commonly use bimetallic strips, converting a temperature change into mechanical displacement, to actuate control of the air conditioner. Electronic thermostats, instead, use a thermistor or other semiconductor sensor, processing temperature change as electronic signals to control the air conditioner.

These controllers are usually used in hotel rooms because they are permanently installed into a wall and hard-wired directly into the air conditioner unit, eliminating the need for batteries.

Types

[edit]
Types Typical Capacity* Air supply Mounting Typical application
Mini-split small – large Direct Wall Residential
Window very small – small Direct Window Residential
Portable very small – small Direct / Ducted Floor Residential, remote areas
Ducted (individual) small – very large Ducted Ceiling Residential, commercial
Ducted (central) medium – very large Ducted Ceiling Residential, commercial
Ceiling suspended medium – large Direct Ceiling Commercial
Cassette medium – large Direct / Ducted Ceiling Commercial
Floor standing medium – large Direct / Ducted Floor Commercial
Packaged very large Direct / Ducted Floor Commercial
Packaged RTU (Rooftop Unit) very large Ducted Rooftop Commercial

* where the typical capacity is in kilowatt as follows:

  • very small: <1.5 kW
  • small: 1.5–3.5 kW
  • medium: 4.2–7.1 kW
  • large: 7.2–14 kW
  • very large: >14 kW

Mini-split and multi-split systems

[edit]
Evaporator, indoor unit, or terminal, side of a ductless split-type air conditioner

Ductless systems (often mini-split, though there are now ducted mini-split) typically supply conditioned and heated air to a single or a few rooms of a building, without ducts and in a decentralized manner.[63] Multi-zone or multi-split systems are a common application of ductless systems and allow up to eight rooms (zones or locations) to be conditioned independently from each other, each with its indoor unit and simultaneously from a single outdoor unit.

The first mini-split system was sold in 1961 by Toshiba in Japan, and the first wall-mounted mini-split air conditioner was sold in 1968 in Japan by Mitsubishi Electric, where small home sizes motivated their development. The Mitsubishi model was the first air conditioner with a cross-flow fan.[64][65][66] In 1969, the first mini-split air conditioner was sold in the US.[67] Multi-zone ductless systems were invented by Daikin in 1973, and variable refrigerant flow systems (which can be thought of as larger multi-split systems) were also invented by Daikin in 1982. Both were first sold in Japan.[68] Variable refrigerant flow systems when compared with central plant cooling from an air handler, eliminate the need for large cool air ducts, air handlers, and chillers; instead cool refrigerant is transported through much smaller pipes to the indoor units in the spaces to be conditioned, thus allowing for less space above dropped ceilings and a lower structural impact, while also allowing for more individual and independent temperature control of spaces. The outdoor and indoor units can be spread across the building.[69] Variable refrigerant flow indoor units can also be turned off individually in unused spaces.[citation needed] The lower start-up power of VRF's DC inverter compressors and their inherent DC power requirements also allow VRF solar-powered heat pumps to be run using DC-providing solar panels.

Ducted central systems

[edit]

Split-system central air conditioners consist of two heat exchangers, an outside unit (the condenser) from which heat is rejected to the environment and an internal heat exchanger (the evaporator, or Fan Coil Unit, FCU) with the piped refrigerant being circulated between the two. The FCU is then connected to the spaces to be cooled by ventilation ducts.[70] Floor standing air conditioners are similar to this type of air conditioner but sit within spaces that need cooling.

Central plant cooling

[edit]
See also: Chiller
Industrial air conditioners on top of the shopping mall Passage in Linz, Austria

Large central cooling plants may use intermediate coolant such as chilled water pumped into air handlers or fan coil units near or in the spaces to be cooled which then duct or deliver cold air into the spaces to be conditioned, rather than ducting cold air directly to these spaces from the plant, which is not done due to the low density and heat capacity of air, which would require impractically large ducts. The chilled water is cooled by chillers in the plant, which uses a refrigeration cycle to cool water, often transferring its heat to the atmosphere even in liquid-cooled chillers through the use of cooling towers. Chillers may be air- or liquid-cooled.[71][72]

Portable units

[edit]

A portable system has an indoor unit on wheels connected to an outdoor unit via flexible pipes, similar to a permanently fixed installed unit (such as a ductless split air conditioner).

Hose systems, which can be monoblock or air-to-air, are vented to the outside via air ducts. The monoblock type collects the water in a bucket or tray and stops when full. The air-to-air type re-evaporates the water, discharges it through the ducted hose, and can run continuously. Many but not all portable units draw indoor air and expel it outdoors through a single duct, negatively impacting their overall cooling efficiency.

Many portable air conditioners come with heat as well as a dehumidification function.[73]

Window unit and packaged terminal

[edit]
Through-the-wall PTAC units, University Motor Inn, Philadelphia

The packaged terminal air conditioner (PTAC), through-the-wall, and window air conditioners are similar. These units are installed on a window frame or on a wall opening. The unit usually has an internal partition separating its indoor and outdoor sides, which contain the unit's condenser and evaporator, respectively. PTAC systems may be adapted to provide heating in cold weather, either directly by using an electric strip, gas, or other heaters, or by reversing the refrigerant flow to heat the interior and draw heat from the exterior air, converting the air conditioner into a heat pump. They may be installed in a wall opening with the help of a special sleeve on the wall and a custom grill that is flush with the wall and window air conditioners can also be installed in a window, but without a custom grill.[74]

Packaged air conditioner

[edit]

Packaged air conditioners (also known as self-contained units)[75][76] are central systems that integrate into a single housing all the components of a split central system, and deliver air, possibly through ducts, to the spaces to be cooled. Depending on their construction they may be outdoors or indoors, on roofs (rooftop units),[77][78] draw the air to be conditioned from inside or outside a building and be water or air-cooled. Often, outdoor units are air-cooled while indoor units are liquid-cooled using a cooling tower.[70][79][80][81][82][83]

Types of compressors

[edit]
Compressor types Common applications Typical capacity Efficiency Durability Repairability
Reciprocating Refrigerator, Walk-in freezer, portable air conditioners small – large very low (small capacity)

medium (large capacity)

very low medium
Rotary vane Residential mini splits small low low easy
Scroll Commercial and central systems, VRF medium medium medium easy
Rotary screw Commercial chiller medium – large medium medium hard
Centrifugal Commercial chiller very large medium high hard
Maglev Centrifugal Commercial chiller very large high very high very hard

Reciprocating

[edit]

This compressor consists of a crankcase, crankshaft, piston rod, piston, piston ring, cylinder head and valves. [citation needed]

Scroll

[edit]
Main article: Scroll compressor

This compressor uses two interleaving scrolls to compress the refrigerant.[84] it consists of one fixed and one orbiting scrolls. This type of compressor is more efficient because it has 70 percent less moving parts than a reciprocating compressor. [citation needed]

Screw

[edit]

This compressor use two very closely meshing spiral rotors to compress the gas. The gas enters at the suction side and moves through the threads as the screws rotate. The meshing rotors force the gas through the compressor, and the gas exits at the end of the screws. The working area is the inter-lobe volume between the male and female rotors. It is larger at the intake end, and decreases along the length of the rotors until the exhaust port. This change in volume is the compression. [citation needed]

Capacity modulation technologies

[edit]

There are several ways to modulate the cooling capacity in refrigeration or air conditioning and heating systems. The most common in air conditioning are: on-off cycling, hot gas bypass, use or not of liquid injection, manifold configurations of multiple compressors, mechanical modulation (also called digital), and inverter technology. [citation needed]

Hot gas bypass

[edit]

Hot gas bypass involves injecting a quantity of gas from discharge to the suction side. The compressor will keep operating at the same speed, but due to the bypass, the refrigerant mass flow circulating with the system is reduced, and thus the cooling capacity. This naturally causes the compressor to run uselessly during the periods when the bypass is operating. The turn down capacity varies between 0 and 100%.[85]

Manifold configurations

[edit]

Several compressors can be installed in the system to provide the peak cooling capacity. Each compressor can run or not in order to stage the cooling capacity of the unit. The turn down capacity is either 0/33/66 or 100% for a trio configuration and either 0/50 or 100% for a tandem.[citation needed]

Mechanically modulated compressor

[edit]

This internal mechanical capacity modulation is based on periodic compression process with a control valve, the two scroll set move apart stopping the compression for a given time period. This method varies refrigerant flow by changing the average time of compression, but not the actual speed of the motor. Despite an excellent turndown ratio – from 10 to 100% of the cooling capacity, mechanically modulated scrolls have high energy consumption as the motor continuously runs.[citation needed]

Variable-speed compressor

[edit]
Main article: Inverter compressor

This system uses a variable-frequency drive (also called an Inverter) to control the speed of the compressor. The refrigerant flow rate is changed by the change in the speed of the compressor. The turn down ratio depends on the system configuration and manufacturer. It modulates from 15 or 25% up to 100% at full capacity with a single inverter from 12 to 100% with a hybrid tandem. This method is the most efficient way to modulate an air conditioner's capacity. It is up to 58% more efficient than a fixed speed system.[citation needed]

Impact

[edit]

Health effects

[edit]
Rooftop condenser unit fitted on top of an Osaka Municipal Subway 10 series subway carriage. Air conditioning has become increasingly prevalent on public transport vehicles as a form of climate control, and to ensure passenger comfort and drivers' occupational safety and health.

In hot weather, air conditioning can prevent heat stroke, dehydration due to excessive sweating, electrolyte imbalance, kidney failure, and other issues due to hyperthermia.[8][86] Heat waves are the most lethal type of weather phenomenon in the United States.[87][88] A 2020 study found that areas with lower use of air conditioning correlated with higher rates of heat-related mortality and hospitalizations.[89] The August 2003 France heatwave resulted in approximately 15,000 deaths, where 80% of the victims were over 75 years old. In response, the French government required all retirement homes to have at least one air-conditioned room at 25 °C (77 °F) per floor during heatwaves.[8]

Air conditioning (including filtration, humidification, cooling and disinfection) can be used to provide a clean, safe, hypoallergenic atmosphere in hospital operating rooms and other environments where proper atmosphere is critical to patient safety and well-being. It is sometimes recommended for home use by people with allergies, especially mold.[90][91] However, poorly maintained water cooling towers can promote the growth and spread of microorganisms such as Legionella pneumophila, the infectious agent responsible for Legionnaires' disease. As long as the cooling tower is kept clean (usually by means of a chlorine treatment), these health hazards can be avoided or reduced. The state of New York has codified requirements for registration, maintenance, and testing of cooling towers to protect against Legionella.[92]

Economic effects

[edit]

First designed to benefit targeted industries such as the press as well as large factories, the invention quickly spread to public agencies and administrations with studies with claims of increased productivity close to 24% in places equipped with air conditioning.[93]

Air conditioning caused various shifts in demography, notably that of the United States starting from the 1970s. In the US, the birth rate was lower in the spring than during other seasons until the 1970s but this difference then declined since then.[94] As of 2007, the Sun Belt contained 30% of the total US population while it was inhabited by 24% of Americans at the beginning of the 20th century.[95] Moreover, the summer mortality rate in the US, which had been higher in regions subject to a heat wave during the summer, also evened out.[7]

The spread of the use of air conditioning acts as a main driver for the growth of global demand of electricity.[96] According to a 2018 report from the International Energy Agency (IEA), it was revealed that the energy consumption for cooling in the United States, involving 328 million Americans, surpasses the combined energy consumption of 4.4 billion people in Africa, Latin America, the Middle East, and Asia (excluding China).[8] A 2020 survey found that an estimated 88% of all US households use AC, increasing to 93% when solely looking at homes built between 2010 and 2020.[97]

Environmental effects

[edit]
Air conditioner farm in the facade of a building in Singapore

Space cooling including air conditioning accounted globally for 2021 terawatt-hours of energy usage in 2016 with around 99% in the form of electricity, according to a 2018 report on air-conditioning efficiency by the International Energy Agency.[8] The report predicts an increase of electricity usage due to space cooling to around 6200 TWh by 2050,[8][98] and that with the progress currently seen, greenhouse gas emissions attributable to space cooling will double: 1,135 million tons (2016) to 2,070 million tons.[8] There is some push to increase the energy efficiency of air conditioners. United Nations Environment Programme (UNEP) and the IEA found that if air conditioners could be twice as effective as now, 460 billion tons of GHG could be cut over 40 years.[99] The UNEP and IEA also recommended legislation to decrease the use of hydrofluorocarbons, better building insulation, and more sustainable temperature-controlled food supply chains going forward.[99]

Refrigerants have also caused and continue to cause serious environmental issues, including ozone depletion and climate change, as several countries have not yet ratified the Kigali Amendment to reduce the consumption and production of hydrofluorocarbons.[100] CFCs and HCFCs refrigerants such as R-12 and R-22, respectively, used within air conditioners have caused damage to the ozone layer,[101] and hydrofluorocarbon refrigerants such as R-410A and R-404A, which were designed to replace CFCs and HCFCs, are instead exacerbating climate change.[102] Both issues happen due to the venting of refrigerant to the atmosphere, such as during repairs. HFO refrigerants, used in some if not most new equipment, solve both issues with an ozone damage potential (ODP) of zero and a much lower global warming potential (GWP) in the single or double digits vs. the three or four digits of hydrofluorocarbons.[103]

Hydrofluorocarbons would have raised global temperatures by around 0.3–0.5 °C (0.5–0.9 °F) by 2100 without the Kigali Amendment. With the Kigali Amendment, the increase of global temperatures by 2100 due to hydrofluorocarbons is predicted to be around 0.06 °C (0.1 °F).[104]

Alternatives to continual air conditioning include passive cooling, passive solar cooling, natural ventilation, operating shades to reduce solar gain, using trees, architectural shades, windows (and using window coatings) to reduce solar gain.[citation needed]

Social effects

[edit]

Socioeconomic groups with a household income below around $10,000 tend to have a low air conditioning adoption,[42] which worsens heat-related mortality.[7] The lack of cooling can be hazardous, as areas with lower use of air conditioning correlate with higher rates of heat-related mortality and hospitalizations.[89] Premature mortality in NYC is projected to grow between 47% and 95% in 30 years, with lower-income and vulnerable populations most at risk.[89] Studies on the correlation between heat-related mortality and hospitalizations and living in low socioeconomic locations can be traced in Phoenix, Arizona,[105] Hong Kong,[106] China,[106] Japan,[107] and Italy.[108][109] Additionally, costs concerning health care can act as another barrier, as the lack of private health insurance during a 2009 heat wave in Australia, was associated with heat-related hospitalization.[109]

Disparities in socioeconomic status and access to air conditioning are connected by some to institutionalized racism, which leads to the association of specific marginalized communities with lower economic status, poorer health, residing in hotter neighborhoods, engaging in physically demanding labor, and experiencing limited access to cooling technologies such as air conditioning.[109] A study overlooking Chicago, Illinois, Detroit, and Michigan found that black households were half as likely to have central air conditioning units when compared to their white counterparts.[110] Especially in cities, Redlining creates heat islands, increasing temperatures in certain parts of the city.[109] This is due to materials heat-absorbing building materials and pavements and lack of vegetation and shade coverage.[111] There have been initiatives that provide cooling solutions to low-income communities, such as public cooling spaces.[8][111]

Other techniques

[edit]

Buildings designed with passive air conditioning are generally less expensive to construct and maintain than buildings with conventional HVAC systems with lower energy demands.[112] While tens of air changes per hour, and cooling of tens of degrees, can be achieved with passive methods, site-specific microclimate must be taken into account, complicating building design.[12]

Many techniques can be used to increase comfort and reduce the temperature in buildings. These include evaporative cooling, selective shading, wind, thermal convection, and heat storage.[113]

Passive ventilation

[edit]
This section is an excerpt from Passive ventilation.[edit]
The ventilation system of a regular earthship
Dogtrot houses are designed to maximise natural ventilation.
A roof turbine ventilator, colloquially known as a 'Whirly Bird', is an application of wind driven ventilation.

Passive ventilation is the process of supplying air to and removing air from an indoor space without using mechanical systems. It refers to the flow of external air to an indoor space as a result of pressure differences arising from natural forces.

There are two types of natural ventilation occurring in buildings: wind driven ventilation and buoyancy-driven ventilation. Wind driven ventilation arises from the different pressures created by wind around a building or structure, and openings being formed on the perimeter which then permit flow through the building. Buoyancy-driven ventilation occurs as a result of the directional buoyancy force that results from temperature differences between the interior and exterior.[114]

Since the internal heat gains which create temperature differences between the interior and exterior are created by natural processes, including the heat from people, and wind effects are variable, naturally ventilated buildings are sometimes called "breathing buildings".

Passive cooling

[edit]
This section is an excerpt from Passive cooling.[edit]
A traditional Iranian solar cooling design using a wind tower

Passive cooling is a building design approach that focuses on heat gain control and heat dissipation in a building in order to improve the indoor thermal comfort with low or no energy consumption.[115][116] This approach works either by preventing heat from entering the interior (heat gain prevention) or by removing heat from the building (natural cooling).[117]

Natural cooling utilizes on-site energy, available from the natural environment, combined with the architectural design of building components (e.g. building envelope), rather than mechanical systems to dissipate heat.[118] Therefore, natural cooling depends not only on the architectural design of the building but on how the site's natural resources are used as heat sinks (i.e. everything that absorbs or dissipates heat). Examples of on-site heat sinks are the upper atmosphere (night sky), the outdoor air (wind), and the earth/soil.

Passive cooling is an important tool for design of buildings for climate change adaptation – reducing dependency on energy-intensive air conditioning in warming environments.[119][120]
A pair of short windcatchers (malqaf) used in traditional architecture; wind is forced down on the windward side and leaves on the leeward side (cross-ventilation). In the absence of wind, the circulation can be driven with evaporative cooling in the inlet (which is also designed to catch dust). In the center, a shuksheika (roof lantern vent), used to shade the qa'a below while allowing hot air rise out of it (stack effect).[11]

Daytime radiative cooling

[edit]
Passive daytime radiative cooling (PDRC) surfaces are high in solar reflectance and heat emittance, cooling with zero energy use or pollution.[121]

Passive daytime radiative cooling (PDRC) surfaces reflect incoming solar radiation and heat back into outer space through the infrared window for cooling during the daytime. Daytime radiative cooling became possible with the ability to suppress solar heating using photonic structures, which emerged through a study by Raman et al. (2014).[122] PDRCs can come in a variety of forms, including paint coatings and films, that are designed to be high in solar reflectance and thermal emittance.[121][123]

PDRC applications on building roofs and envelopes have demonstrated significant decreases in energy consumption and costs.[123] In suburban single-family residential areas, PDRC application on roofs can potentially lower energy costs by 26% to 46%.[124] PDRCs are predicted to show a market size of ~$27 billion for indoor space cooling by 2025 and have undergone a surge in research and development since the 2010s.[125][126]

Fans

[edit]
Main article: Ceiling fan

Hand fans have existed since prehistory. Large human-powered fans built into buildings include the punkah.

The 2nd-century Chinese inventor Ding Huan of the Han dynasty invented a rotary fan for air conditioning, with seven wheels 3 m (10 ft) in diameter and manually powered by prisoners.[127]: 99, 151, 233 In 747, Emperor Xuanzong (r. 712–762) of the Tang dynasty (618–907) had the Cool Hall (Liang Dian 涼殿) built in the imperial palace, which the Tang Yulin describes as having water-powered fan wheels for air conditioning as well as rising jet streams of water from fountains. During the subsequent Song dynasty (960–1279), written sources mentioned the air conditioning rotary fan as even more widely used.[127]: 134, 151

Thermal buffering

[edit]

In areas that are cold at night or in winter, heat storage is used. Heat may be stored in earth or masonry; air is drawn past the masonry to heat or cool it.[13]

In areas that are below freezing at night in winter, snow and ice can be collected and stored in ice houses for later use in cooling.[13] This technique is over 3,700 years old in the Middle East.[128] Harvesting outdoor ice during winter and transporting and storing for use in summer was practiced by wealthy Europeans in the early 1600s,[15] and became popular in Europe and the Americas towards the end of the 1600s.[129] This practice was replaced by mechanical compression-cycle icemakers.

Evaporative cooling

[edit]
Main article: Evaporative cooler
An evaporative cooler

In dry, hot climates, the evaporative cooling effect may be used by placing water at the air intake, such that the draft draws air over water and then into the house. For this reason, it is sometimes said that the fountain, in the architecture of hot, arid climates, is like the fireplace in the architecture of cold climates.[11] Evaporative cooling also makes the air more humid, which can be beneficial in a dry desert climate.[130]

Evaporative coolers tend to feel as if they are not working during times of high humidity, when there is not much dry air with which the coolers can work to make the air as cool as possible for dwelling occupants. Unlike other types of air conditioners, evaporative coolers rely on the outside air to be channeled through cooler pads that cool the air before it reaches the inside of a house through its air duct system; this cooled outside air must be allowed to push the warmer air within the house out through an exhaust opening such as an open door or window.[131]

See also

[edit]

References

[edit]
  1. ^ "Air Con". Cambridge Dictionary. Archived from the original on May 3, 2022. Retrieved January 6, 2023.
  2. ^ Dissertation Abstracts International: The humanities and social sciences. A. University Microfilms. 2005. p. 3600.
  3. ^ 1993 ASHRAE Handbook: Fundamentals. ASHRAE. 1993. ISBN 978-0-910110-97-6.
  4. ^ Enteria, Napoleon; Sawachi, Takao; Saito, Kiyoshi (January 31, 2023). Variable Refrigerant Flow Systems: Advances and Applications of VRF. Springer Nature. p. 46. ISBN 978-981-19-6833-4.
  5. ^ Agencies, United States Congress House Committee on Appropriations Subcommittee on Dept of the Interior and Related (1988). Department of the Interior and Related Agencies Appropriations for 1989: Testimony of public witnesses, energy programs, Institute of Museum Services, National Endowment for the Arts, National Endowment for the Humanities. U.S. Government Printing Office. p. 629.
  6. ^ "Earth Tubes: Providing the freshest possible air to your building". Earth Rangers Centre for Sustainable Technology Showcase. Archived from the original on January 28, 2021. Retrieved May 12, 2021.
  7. ^ Jump up to:a b c Barreca, Alan; Clay, Karen; Deschenes, Olivier; Greenstone, Michael; Shapiro, Joseph S. (February 2016). "Adapting to Climate Change: The Remarkable Decline in the US Temperature-Mortality Relationship over the Twentieth Century". Journal of Political Economy. 124 (1): 105–159. doi:10.1086/684582.
  8. ^ Jump up to:a b c d e f g h i j International Energy Agency (May 15, 2018). The Future of Cooling - Opportunities for energy-efficient air conditioning (PDF) (Report). Archived (PDF) from the original on June 26, 2024. Retrieved July 1, 2024.
  9. ^ Laub, Julian M. (1963). Air Conditioning & Heating Practice. Holt, Rinehart and Winston. p. 367. ISBN 978-0-03-011225-6.
  10. ^ "Air-conditioning found at 'oldest city in the world'". The Independent. June 24, 2000. Archived from the original on December 8, 2023. Retrieved December 9, 2023.
  11. ^ Jump up to:a b c Mohamed, Mady A.A. (January 2010). Lehmann, S.; Waer, H.A.; Al-Qawasmi, J. (eds.). Traditional Ways of Dealing with Climate in Egypt. The Seventh International Conference of Sustainable Architecture and Urban Development (SAUD 2010). Amman, Jordan: The Center for the Study of Architecture in Arab Region (CSAAR Press). pp. 247–266. Archived from the original on May 13, 2021. Retrieved May 12, 2021.
  12. ^ Jump up to:a b c Ford, Brian (September 2001). "Passive downdraught evaporative cooling: principles and practice". Architectural Research Quarterly. 5 (3): 271–280. doi:10.1017/S1359135501001312.
  13. ^ Jump up to:a b c Attia, Shady; Herde, André de (June 22–24, 2009). Designing the Malqaf for Summer Cooling in Low-Rise Housing, an Experimental Study. 26th Conference on Passive and Low Energy Architecture (PLEA2009). Quebec City. Archived from the original on May 13, 2021. Retrieved May 12, 2021 – via ResearchGate.
  14. ^ "Heating, Ventilation and Air-Conditioning Systems, Part of Indoor Air Quality Design Tools for Schools". US EPA. October 17, 2014. Archived from the original on July 5, 2022. Retrieved July 5, 2022.
  15. ^ Jump up to:a b c Shachtman, Tom (1999). "Winter in Summer". Absolute zero and the conquest of cold. Boston: Houghton Mifflin Harcourt. ISBN 978-0395938881. OCLC 421754998. Archived from the original on May 13, 2021. Retrieved May 12, 2021.
  16. ^ Porta, Giambattista Della (1584). Magiae naturalis (PDF). London. LCCN 09023451. Archived (PDF) from the original on May 13, 2021. Retrieved May 12, 2021. In our method I shall observe what our ancestors have said; then I shall show by my own experience, whether they be true or false
  17. ^ Beck, Leonard D. (October 1974). "Things Magical in the collections of the Rare Book and Special Collections Division" (PDF). Library of Congress Quarterly Journal. 31: 208–234. Archived (PDF) from the original on March 24, 2021. Retrieved May 12, 2021.
  18. ^ Laszlo, Pierre (2001). Salt: Grain of Life. Columbia University Press. p. 117. ISBN 978-0231121989. OCLC 785781471. Cornelius Drebbel air conditioning.
  19. ^ Franklin, Benjamin (June 17, 1758). "The Montgomery Family: An historical and photographic perspective". Letter to John Lining. Archived from the original on February 25, 2021. Retrieved May 12, 2021.
  20. ^ Jump up to:a b c d Green, Amanda (January 1, 2015). "The Cool History of the Air Conditioner". Popular Mechanics. Archived from the original on April 10, 2021. Retrieved May 12, 2021.
  21. ^ "John Gorrie". Encyclopædia Britannica. September 29, 2020. Archived from the original on March 13, 2021. Retrieved May 12, 2021.
  22. ^ Gorrie, John "Improved process for the artificial production of ice" U.S. Patent no. 8080 (Issued: May 6, 1851).
  23. ^ Wright, E. Lynne (2009). It Happened in Florida: Remarkable Events That Shaped History. Rowman & Littlefield. pp. 13–. ISBN 978-0762761692.
  24. ^ Jump up to:a b Bruce-Wallace, L. G. (1966). "Harrison, James (1816–1893)". Australian Dictionary of Biography. Vol. 1. Canberra: National Centre of Biography, Australian National University. ISBN 978-0-522-84459-7. ISSN 1833-7538. OCLC 70677943. Retrieved May 12, 2021.
  25. ^ Palermo, Elizabeth (May 1, 2014). "Who Invented Air Conditioning?". livescience.com. Archived from the original on January 16, 2021. Retrieved May 12, 2021.
  26. ^ Varrasi, John (June 6, 2011). "Global Cooling: The History of Air Conditioning". American Society of Mechanical Engineers. Archived from the original on March 8, 2021. Retrieved May 12, 2021.
  27. ^ Simha, R. V. (February 2012). "Willis H Carrier". Resonance. 17 (2): 117–138. doi:10.1007/s12045-012-0014-y. ISSN 0971-8044. S2CID 116582893.
  28. ^ Gulledge III, Charles; Knight, Dennis (February 11, 2016). "Heating, Ventilating, Air-Conditioning, And Refrigerating Engineering". National Institute of Building Sciences. Archived from the original on April 20, 2021. Retrieved May 12, 2021. Though he did not actually invent air-conditioning nor did he take the first documented scientific approach to applying it, Willis Carrier is credited with integrating the scientific method, engineering, and business of this developing technology and creating the industry we know today as air-conditioning.
  29. ^ "Willis Carrier – 1876–1902". Carrier Global. Archived from the original on February 27, 2021. Retrieved May 12, 2021.
  30. ^ "Carrier Reports First Quarter 2020 Earnings". Carrier Global (Press release). May 8, 2020. Archived from the original on January 24, 2021. Retrieved May 12, 2021.
  31. ^ "Carrier Becomes Independent, Publicly Traded Company, Begins Trading on New York Stock Exchange". Carrier Global (Press release). April 3, 2020. Archived from the original on February 25, 2021. Retrieved May 12, 2021.
  32. ^ Cramer, Stuart W. "Humidifying and air conditioning apparatus" U.S. Patent no. 852,823 (filed: April 18, 1906; issued: May 7, 1907).
    • See also: Cramer, Stuart W. (1906) "Recent development in air conditioning" in: Proceedings of the Tenth Annual Convention of the American Cotton Manufacturers Association Held at Asheville, North Carolina May 16–17, 1906. Charlotte, North Carolina, USA: Queen City Publishing Co. pp. 182-211.
  33. ^ US patent US808897A, Carrier, Willis H., "Apparatus for treating air", published January 2, 1906, issued January 2, 1906 and Buffalo Forge Company"No. 808,897 Patented Jan. 2, 1906: H. W. Carrier: Apparatus for Treating Air" (PDF). Archived (PDF) from the original on December 5, 2019. Retrieved May 12, 2021.
  34. ^ "First Air-Conditioned Auto". Popular Science. Vol. 123, no. 5. November 1933. p. 30. ISSN 0161-7370. Archived from the original on April 26, 2021. Retrieved May 12, 2021.
  35. ^ "Room-size air conditioner fits under window sill". Popular Mechanics. Vol. 63, no. 6. June 1935. p. 885. ISSN 0032-4558. Archived from the original on November 22, 2016. Retrieved May 12, 2021.
  36. ^ "Michigan Fast Facts and Trivia". 50states.com. Archived from the original on June 18, 2017. Retrieved May 12, 2021.
  37. ^ US patent US2433960A, Sherman, Robert S., "Air conditioning apparatus", published January 6, 1948, issued January 6, 1948
  38. ^ "IEEE milestones (39) Inverter Air Conditioners, 1980–1981" (PDF). March 2021. Archived (PDF) from the original on January 21, 2024. Retrieved February 9, 2024.
  39. ^ "Inverter Air Conditioners, 1980–1981 IEEE Milestone Celebration Ceremony" (PDF). March 16, 2021. Archived (PDF) from the original on January 21, 2024. Retrieved February 9, 2024.
  40. ^ Seale, Avrel (August 7, 2023). "Texas alumnus and his alma mater central to air-conditioned homes". UT News. Retrieved November 13, 2024.
  41. ^ "Air Conditioned Village". Atlas Obscura. Retrieved November 13, 2024.
  42. ^ Jump up to:a b c Davis, Lucas; Gertler, Paul; Jarvis, Stephen; Wolfram, Catherine (July 2021). "Air conditioning and global inequality". Global Environmental Change. 69: 102299. Bibcode:2021GEC....6902299D. doi:10.1016/j.gloenvcha.2021.102299.
  43. ^ Pierre-Louis, Kendra (May 15, 2018). "The World Wants Air-Conditioning. That Could Warm the World". The New York Times. Archived from the original on February 16, 2021. Retrieved May 12, 2021.
  44. ^ Carroll, Rory (October 26, 2015). "How America became addicted to air conditioning". The Guardian. Los Angeles. Archived from the original on March 13, 2021. Retrieved May 12, 2021.
  45. ^ Lester, Paul (July 20, 2015). "History of Air Conditioning". United States Department of Energy. Archived from the original on June 5, 2020. Retrieved May 12, 2021.
  46. ^ Cornish, Cheryl; Cooper, Stephen; Jenkins, Salima. Characteristics of New Housing (Report). United States Census Bureau. Archived from the original on April 11, 2021. Retrieved May 12, 2021.
  47. ^ "Central Air Conditioning Buying Guide". Consumer Reports. March 3, 2021. Archived from the original on May 9, 2021. Retrieved May 12, 2021.
  48. ^ Petchers, Neil (2003). Combined Heating, Cooling & Power Handbook: Technologies & Applications : an Integrated Approach to Energy Resource Optimization. The Fairmont Press. p. 737. ISBN 978-0-88173-433-1.
  49. ^ Krarti, Moncef (December 1, 2020). Energy Audit of Building Systems: An Engineering Approach, Third Edition. CRC Press. p. 370. ISBN 978-1-000-25967-4.
  50. ^ "What is a Reversing Valve". Samsung India. Archived from the original on February 22, 2019. Retrieved May 12, 2021.
  51. ^ "Humidity and Comfort" (PDF). DriSteem. Archived from the original (PDF) on May 16, 2018. Retrieved May 12, 2021.
  52. ^ Perryman, Oliver (April 19, 2021). "Dehumidifier vs Air Conditioning". Dehumidifier Critic. Archived from the original on May 13, 2021. Retrieved May 12, 2021.
  53. ^ Snijders, Aart L. (July 30, 2008). "Aquifer Thermal Energy Storage (ATES) Technology Development and Major Applications in Europe" (PDF). Toronto and Region Conservation Authority. Arnhem: IFTech International. Archived (PDF) from the original on March 8, 2021. Retrieved May 12, 2021.
  54. ^ Jump up to:a b "Cold Climate Air Source Heat Pump" (PDF). Minnesota Department of Commerce, Division of Energy Resources. Archived (PDF) from the original on January 2, 2022. Retrieved March 29, 2022.
  55. ^ "Even in Frigid Temperatures, Air-Source Heat Pumps Keep Homes Warm From Alaska Coast to U.S. Mass Market". nrel.gov. Archived from the original on April 10, 2022. Retrieved March 29, 2022.
  56. ^ "Heat Pumps: A Practical Solution for Cold Climates". RMI. December 10, 2020. Archived from the original on March 31, 2022. Retrieved March 28, 2022.
  57. ^ "TEM Instruction Sheet" (PDF). TE Technology. March 14, 2012. Archived from the original (PDF) on January 24, 2013. Retrieved May 12, 2021.
  58. ^ "Coefficient of Performance (COP) heat pumps". Grundfos. November 18, 2020. Archived from the original on May 3, 2021. Retrieved May 12, 2021.
  59. ^ "Unpotted HP-199-1.4-0.8 at a hot-side temperature of 25 °C" (PDF). TE Technology. Archived from the original (PDF) on January 7, 2009. Retrieved February 9, 2024.
  60. ^ Newell, David B.; Tiesinga, Eite, eds. (August 2019). The International System of Units (SI) (PDF). National Institute of Standards and Technology. doi:10.6028/NIST.SP.330-2019. Archived (PDF) from the original on April 22, 2021. Retrieved May 13, 2021.
  61. ^ ANSI/AHRI 210/240-2008: 2008 Standard for Performance Rating of Unitary Air-Conditioning & Air-Source Heat Pump Equipment (PDF). Air Conditioning, Heating and Refrigeration Institute. 2012. Archived from the original on March 29, 2018. Retrieved May 13, 2021.
  62. ^ Baraniuk, Chris. "Cutting-Edge Technology Could Massively Reduce the Amount of Energy Used for Air Conditioning". Wired. ISSN 1059-1028. Retrieved July 18, 2024.
  63. ^ "M-Series Contractor Guide" (PDF). Mitsubishipro.com. p. 19. Archived (PDF) from the original on March 18, 2021. Retrieved May 12, 2021.
  64. ^ "エアコンの歴史とヒミツ | 調べよう家電と省エネ | キッズ版 省エネ家電 de スマートライフ(一般財団法人 家電製品協会) 学ぼう!スマートライフ". shouene-kaden.net. Archived from the original on September 7, 2022. Retrieved January 21, 2024.
  65. ^ "Air conditioner | History". Toshiba Carrier. April 2016. Archived from the original on March 9, 2021. Retrieved May 12, 2021.
  66. ^ "1920s–1970s | History". Mitsubishi Electric. Archived from the original on March 8, 2021. Retrieved May 12, 2021.
  67. ^ Wagner, Gerry (November 30, 2021). "The Duct Free Zone: History of the Mini Split". HPAC Magazine. Retrieved February 9, 2024.
  68. ^ "History of Daikin Innovation". Daikin. Archived from the original on June 5, 2020. Retrieved May 12, 2021.
  69. ^ Feit, Justin (December 20, 2017). "The Emergence of VRF as a Viable HVAC Option". buildings.com. Archived from the original on December 3, 2020. Retrieved May 12, 2021.
  70. ^ Jump up to:a b "Central Air Conditioning". United States Department of Energy. Archived from the original on January 30, 2021. Retrieved May 12, 2021.
  71. ^ Kreith, Frank; Wang, Shan K.; Norton, Paul (April 20, 2018). Air Conditioning and Refrigeration Engineering. CRC Press. ISBN 978-1-351-46783-4.
  72. ^ Wang, Shan K. (November 7, 2000). Handbook of Air Conditioning and Refrigeration. McGraw-Hill Education. ISBN 978-0-07-068167-5.
  73. ^ Hleborodova, Veronika (August 14, 2018). "Portable Vs Split System Air Conditioning | Pros & Cons". Canstar Blue. Archived from the original on March 9, 2021. Retrieved May 12, 2021.
  74. ^ Kamins, Toni L. (July 15, 2013). "Through-the-Wall Versus PTAC Air Conditioners: A Guide for New Yorkers". Brick Underground. Archived from the original on January 15, 2021. Retrieved May 12, 2021.
  75. ^ "Self-Contained Air Conditioning Systems". Daikin Applied Americas. 2015. Archived from the original on October 30, 2020. Retrieved May 12, 2021.
  76. ^ "LSWU/LSWD Vertical Water-Cooled Self-Contained Unit Engineering Guide" (PDF). Johnson Controls. April 6, 2018. Archived (PDF) from the original on May 13, 2021. Retrieved May 12, 2021.
  77. ^ "Packaged Rooftop Unit" (PDF). Carrier Global. 2016. Archived (PDF) from the original on May 13, 2021. Retrieved May 12, 2021.
  78. ^ "Packaged Rooftop Air Conditioners" (PDF). Trane Technologies. November 2006. Archived (PDF) from the original on May 13, 2021. Retrieved May 12, 2021.
  79. ^ "What is Packaged Air Conditioner? Types of Packged Air Condtioners". Bright Hub Engineering. January 13, 2010. Archived from the original on February 22, 2018. Retrieved May 12, 2021.
  80. ^ Evans, Paul (November 11, 2018). "RTU Rooftop Units explained". The Engineering Mindset. Archived from the original on January 15, 2021. Retrieved May 12, 2021.
  81. ^ "water-cooled – Johnson Supply". studylib.net. 2000. Archived from the original on May 13, 2021. Retrieved May 12, 2021.
  82. ^ "Water Cooled Packaged Air Conditioners" (PDF). Japan: Daikin. May 2, 2003. Archived (PDF) from the original on June 19, 2018. Retrieved May 12, 2021.
  83. ^ "Water Cooled Packaged Unit" (PDF). Daikin. Archived (PDF) from the original on May 13, 2021. Retrieved May 12, 2021.
  84. ^ Lun, Y. H. Venus; Tung, S. L. Dennis (November 13, 2019). Heat Pumps for Sustainable Heating and Cooling. Springer Nature. p. 25. ISBN 978-3-030-31387-6.
  85. ^ Ghanbariannaeeni, Ali; Ghazanfarihashemi, Ghazalehsadat (June 2012). "Bypass Method For Recip Compressor Capacity Control". Pipeline and Gas Journal. 239 (6). Archived from the original on August 12, 2014. Retrieved February 9, 2024.
  86. ^ "Heat Stroke (Hyperthermia)". Harvard Health. January 2, 2019. Archived from the original on January 29, 2021. Retrieved May 13, 2021.
  87. ^ "Weather Related Fatality and Injury Statistics". National Weather Service. 2021. Archived from the original on August 24, 2022. Retrieved August 24, 2022.
  88. ^ "Extreme Weather: A Guide to Surviving Flash Floods, Tornadoes, Hurricanes, Heat Waves, Snowstorms Tsunamis and Other Natural Disasters". Reference Reviews. 26 (8): 41. October 19, 2012. doi:10.1108/09504121211278322. ISSN 0950-4125. Archived from the original on January 21, 2024. Retrieved December 9, 2023.
  89. ^ Jump up to:a b c Gamarro, Harold; Ortiz, Luis; González, Jorge E. (August 1, 2020). "Adapting to Extreme Heat: Social, Atmospheric, and Infrastructure Impacts of Air-Conditioning in Megacities—The Case of New York City". Journal of Engineering for Sustainable Buildings and Cities. 1 (3). doi:10.1115/1.4048175. ISSN 2642-6641. S2CID 222121944.
  90. ^ Spiegelman, Jay; Friedman, Herman; Blumstein, George I. (September 1, 1963). "The effects of central air conditioning on pollen, mold, and bacterial concentrations". Journal of Allergy. 34 (5): 426–431. doi:10.1016/0021-8707(63)90007-8. ISSN 0021-8707. PMID 14066385.
  91. ^ Portnoy, Jay M.; Jara, David (February 1, 2015). "Mold allergy revisited". Annals of Allergy, Asthma & Immunology. 114 (2): 83–89. doi:10.1016/j.anai.2014.10.004. ISSN 1081-1206. PMID 25624128.
  92. ^ "Subpart 4-1 – Cooling Towers". New York Codes, Rules and Regulations. June 7, 2016. Archived from the original on May 13, 2021. Retrieved May 13, 2021.
  93. ^ Nordhaus, William D. (February 10, 2010). "Geography and macroeconomics: New data and new findings". Proceedings of the National Academy of Sciences. 103 (10): 3510–3517. doi:10.1073/pnas.0509842103. ISSN 0027-8424. PMC 1363683. PMID 16473945.
  94. ^ Barreca, Alan; Deschenes, Olivier; Guldi, Melanie (2018). "Maybe next month? Temperature shocks and dynamic adjustments in birth rates". Demography. 55 (4): 1269–1293. doi:10.1007/s13524-018-0690-7. PMC 7457515. PMID 29968058.
  95. ^ Glaeser, Edward L.; Tobio, Kristina (January 2008). "The Rise of the Sunbelt". Southern Economic Journal. 74 (3): 609–643. doi:10.1002/j.2325-8012.2008.tb00856.x.
  96. ^ Sherman, Peter; Lin, Haiyang; McElroy, Michael (2018). "Projected global demand for air conditioning associated with extreme heat and implications for electricity grids in poorer countries". Energy and Buildings. 268: 112198. doi:10.1016/j.enbuild.2022.112198. ISSN 0378-7788. S2CID 248979815.
  97. ^ Air Filters Used in Air Conditioning and General Ventilation Part 1: Methods of Test for Atmospheric Dust Spot Efficiency and Synthetic Dust Weight Arrestance (Withdrawn Standard). British Standards Institution. March 29, 1985. BS 6540-1:1985.
  98. ^ Mutschler, Robin; Rüdisüli, Martin; Heer, Philipp; Eggimann, Sven (April 15, 2021). "Benchmarking cooling and heating energy demands considering climate change, population growth and cooling device uptake". Applied Energy. 288: 116636. Bibcode:2021ApEn..28816636M. doi:10.1016/j.apenergy.2021.116636. ISSN 0306-2619.
  99. ^ Jump up to:a b "Climate-friendly cooling could cut years of Greenhouse Gas Emissions and save US$ trillions: UN". Climate Change and Law Collection. doi:10.1163/9789004322714_cclc_2020-0252-0973.
  100. ^ Gerretsen, Isabelle (December 8, 2020). "How your fridge is heating up the planet". BBC Future. Archived from the original on May 10, 2021. Retrieved May 13, 2021.
  101. ^ Encyclopedia of Energy: Ph-S. Elsevier. 2004. ISBN 978-0121764821.
  102. ^ Corberan, J.M. (2016). "New trends and developments in ground-source heat pumps". Advances in Ground-Source Heat Pump Systems. pp. 359–385. doi:10.1016/B978-0-08-100311-4.00013-3. ISBN 978-0-08-100311-4.
  103. ^ Roselli, Carlo; Sasso, Maurizio (2021). Geothermal Energy Utilization and Technologies 2020. MDPI. ISBN 978-3036507040.
  104. ^ "Cooling Emissions and Policy Synthesis Report: Benefits of cooling efficiency and the Kigali Amendment, United Nations Environment Programme - International Energy Agency, 2020" (PDF).
  105. ^ Harlan, Sharon L.; Declet-Barreto, Juan H.; Stefanov, William L.; Petitti, Diana B. (February 2013). "Neighborhood Effects on Heat Deaths: Social and Environmental Predictors of Vulnerability in Maricopa County, Arizona". Environmental Health Perspectives. 121 (2): 197–204. Bibcode:2013EnvHP.121..197H. doi:10.1289/ehp.1104625. ISSN 0091-6765. PMC 3569676. PMID 23164621.
  106. ^ Jump up to:a b Chan, Emily Ying Yang; Goggins, William B; Kim, Jacqueline Jakyoung; Griffiths, Sian M (April 2012). "A study of intracity variation of temperature-related mortality and socioeconomic status among the Chinese population in Hong Kong". Journal of Epidemiology and Community Health. 66 (4): 322–327. doi:10.1136/jech.2008.085167. ISSN 0143-005X. PMC 3292716. PMID 20974839.
  107. ^ Ng, Chris Fook Sheng; Ueda, Kayo; Takeuchi, Ayano; Nitta, Hiroshi; Konishi, Shoko; Bagrowicz, Rinako; Watanabe, Chiho; Takami, Akinori (2014). "Sociogeographic Variation in the Effects of Heat and Cold on Daily Mortality in Japan". Journal of Epidemiology. 24 (1): 15–24. doi:10.2188/jea.JE20130051. PMC 3872520. PMID 24317342.
  108. ^ Stafoggia, Massimo; Forastiere, Francesco; Agostini, Daniele; Biggeri, Annibale; Bisanti, Luigi; Cadum, Ennio; Caranci, Nicola; de'Donato, Francesca; De Lisio, Sara; De Maria, Moreno; Michelozzi, Paola; Miglio, Rossella; Pandolfi, Paolo; Picciotto, Sally; Rognoni, Magda (2006). "Vulnerability to Heat-Related Mortality: A Multicity, Population-Based, Case-Crossover Analysis". Epidemiology. 17 (3): 315–323. doi:10.1097/01.ede.0000208477.36665.34. ISSN 1044-3983. JSTOR 20486220. PMID 16570026. S2CID 20283342.
  109. ^ Jump up to:a b c d Gronlund, Carina J. (September 2014). "Racial and Socioeconomic Disparities in Heat-Related Health Effects and Their Mechanisms: a Review". Current Epidemiology Reports. 1 (3): 165–173. doi:10.1007/s40471-014-0014-4. PMC 4264980. PMID 25512891.
  110. ^ O'Neill, M. S. (May 11, 2005). "Disparities by Race in Heat-Related Mortality in Four US Cities: The Role of Air Conditioning Prevalence". Journal of Urban Health: Bulletin of the New York Academy of Medicine. 82 (2): 191–197. doi:10.1093/jurban/jti043. PMC 3456567. PMID 15888640.
  111. ^ Jump up to:a b Sampson, Natalie R.; Gronlund, Carina J.; Buxton, Miatta A.; Catalano, Linda; White-Newsome, Jalonne L.; Conlon, Kathryn C.; O’Neill, Marie S.; McCormick, Sabrina; Parker, Edith A. (April 1, 2013). "Staying cool in a changing climate: Reaching vulnerable populations during heat events". Global Environmental Change. 23 (2): 475–484. Bibcode:2013GEC....23..475S. doi:10.1016/j.gloenvcha.2012.12.011. ISSN 0959-3780. PMC 5784212. PMID 29375195.
  112. ^ Niktash, Amirreza; Huynh, B. Phuoc (July 2–4, 2014). Simulation and Analysis of Ventilation Flow Through a Room Caused by a Two-sided Windcatcher Using a LES Method (PDF). World Congress on Engineering. Lecture Notes in Engineering and Computer Science. Vol. 2. London. eISSN 2078-0966. ISBN 978-9881925350. ISSN 2078-0958. Archived (PDF) from the original on April 26, 2018. Retrieved May 13, 2021.
  113. ^ Zhang, Chen; Kazanci, Ongun Berk; Levinson, Ronnen; Heiselberg, Per; Olesen, Bjarne W.; Chiesa, Giacomo; Sodagar, Behzad; Ai, Zhengtao; Selkowitz, Stephen; Zinzi, Michele; Mahdavi, Ardeshir (November 15, 2021). "Resilient cooling strategies – A critical review and qualitative assessment". Energy and Buildings. 251: 111312. Bibcode:2021EneBu.25111312Z. doi:10.1016/j.enbuild.2021.111312. hdl:2117/363031. ISSN 0378-7788.
  114. ^ Linden, P. F. (1999). "The Fluid Mechanics of Natural Ventilation". Annual Review of Fluid Mechanics. 31: 201–238. Bibcode:1999AnRFM..31..201L. doi:10.1146/annurev.fluid.31.1.201.
  115. ^ Santamouris, M.; Asimakoupolos, D. (1996). Passive cooling of buildings (1st ed.). London: James & James (Science Publishers) Ltd. ISBN 978-1-873936-47-4.
  116. ^ Leo Samuel, D.G.; Shiva Nagendra, S.M.; Maiya, M.P. (August 2013). "Passive alternatives to mechanical air conditioning of building: A review". Building and Environment. 66: 54–64. Bibcode:2013BuEnv..66...54S. doi:10.1016/j.buildenv.2013.04.016.
  117. ^ M.j, Limb (January 1, 1998). "BIB 08: An Annotated Bibliography: Passive Cooling Technology for Office Buildings in Hot Dry and Temperate Climates".
  118. ^ Niles, Philip; Kenneth, Haggard (1980). Passive Solar Handbook. California Energy Resources Conservation. ASIN B001UYRTMM.
  119. ^ "Cooling: The hidden threat for climate change and sustainable goals". phys.org. Retrieved September 18, 2021.
  120. ^ Ford, Brian (September 2001). "Passive downdraught evaporative cooling: principles and practice". Arq: Architectural Research Quarterly. 5 (3): 271–280. doi:10.1017/S1359135501001312. ISSN 1474-0516. S2CID 110209529.
  121. ^ Jump up to:a b Chen, Meijie; Pang, Dan; Chen, Xingyu; Yan, Hongjie; Yang, Yuan (2022). "Passive daytime radiative cooling: Fundamentals, material designs, and applications". EcoMat. 4. doi:10.1002/eom2.12153. S2CID 240331557. Passive daytime radiative cooling (PDRC) dissipates terrestrial heat to the extremely cold outer space without using any energy input or producing pollution. It has the potential to simultaneously alleviate the two major problems of energy crisis and global warming.
  122. ^ Raman, Aaswath P.; Anoma, Marc Abou; Zhu, Linxiao; Rephaeli, Eden; Fan, Shanhui (November 2014). "Passive radiative cooling below ambient air temperature under direct sunlight". Nature. 515 (7528): 540–544. Bibcode:2014Natur.515..540R. doi:10.1038/nature13883. PMID 25428501.
  123. ^ Jump up to:a b Bijarniya, Jay Prakash; Sarkar, Jahar; Maiti, Pralay (November 2020). "Review on passive daytime radiative cooling: Fundamentals, recent researches, challenges and opportunities". Renewable and Sustainable Energy Reviews. 133: 110263. Bibcode:2020RSERv.13310263B. doi:10.1016/j.rser.2020.110263. S2CID 224874019.
  124. ^ Mokhtari, Reza; Ulpiani, Giulia; Ghasempour, Roghayeh (July 2022). "The Cooling Station: Combining hydronic radiant cooling and daytime radiative cooling for urban shelters". Applied Thermal Engineering. 211: 118493. Bibcode:2022AppTE.21118493M. doi:10.1016/j.applthermaleng.2022.118493.
  125. ^ Yang, Yuan; Zhang, Yifan (July 2020). "Passive daytime radiative cooling: Principle, application, and economic analysis". MRS Energy & Sustainability. 7 (1). doi:10.1557/mre.2020.18.
  126. ^ Miranda, Nicole D.; Renaldi, Renaldi; Khosla, Radhika; McCulloch, Malcolm D. (October 2021). "Bibliometric analysis and landscape of actors in passive cooling research". Renewable and Sustainable Energy Reviews. 149: 111406. Bibcode:2021RSERv.14911406M. doi:10.1016/j.rser.2021.111406.
  127. ^ Jump up to:a b Needham, Joseph; Wang, Ling (1991). Science and Civilisation in China, Volume 4: Physics and Physical Technology, Part 2, Mechanical Engineering. Cambridge University Press. ISBN 978-0521058032. OCLC 468144152.
  128. ^ Dalley, Stephanie (2002). Mari and Karana: Two Old Babylonian Cities (2nd ed.). Piscataway, New Jersey: Gorgias Press. p. 91. ISBN 978-1931956024. OCLC 961899663. Archived from the original on January 29, 2021. Retrieved May 13, 2021.
  129. ^ Nagengast, Bernard (February 1999). "Comfort from a Block of Ice: A History of Comfort Cooling Using Ice" (PDF). ASHRAE Journal. 41 (2): 49. ISSN 0001-2491. Archived (PDF) from the original on May 13, 2021. Retrieved May 13, 2021.
  130. ^ Bahadori, Mehdi N. (February 1978). "Passive Cooling Systems in Iranian Architecture". Scientific American. 238 (2): 144–154. Bibcode:1978SciAm.238b.144B. doi:10.1038/SCIENTIFICAMERICAN0278-144.
  131. ^ Smith, Shane (2000). Greenhouse Gardener's Companion: Growing Food and Flowers in Your Greenhouse Or Sunspace. Illustrated by Marjorie C. Leggitt (illustrated, revised ed.). Golden, Colorado: Fulcrum Publishing. p. 62. ISBN 978-1555914509. OCLC 905564174. Archived from the original on May 13, 2021. Retrieved August 25, 2020.

AC System Replacement

Our Buisness

Our Business