Home Kilowatt

Heat Pump Size Calculator by Climate Zone

Enter your square footage and insulation, pick your state, and see the heating capacity your house needs on a design-cold day, next to the capacity it needs for cooling.

An outdoor heat pump unit on a concrete pad with light frost on the gravel.

Heat pump size

B06

Scenario A

Sets the electricity rate. Pick US average if you're not sure.

$/kWh

From EIA for US average. Use the rate on your bill if you know it.

Rate used: 18.4¢/kWh · US average · EIA reference 2025–26 · design temp 10 °F · climate zone 4 (data as of 2026-09-26) ·

sq ft
°F

Heating capacity needed

48,300BTU/h

4.0 tons of heating at 10 °F outside (US average 99% design temperature). Confirm with a Manual J load calculation before you buy.

Design temperature difference
60 °F (indoor 70 °F − US average design 10 °F)
Heat loss at design temperature
42,000 BTU/h
Heating capacity with 15% margin
48,300 BTU/h
Size in tons
4.0 tons
Furnace input rating (÷ AFUE)
50,842 BTU/h
Cooling capacity (20 BTU/sq ft × climate-zone factor)
40,000 BTU/h

Estimate. Formula and sources are under “How it works”. Change any input; the result updates as you type.

Embed this calculator

Paste this code on your site. The calculator stays free and shows 'Powered by Home Kilowatt'.

2026 note: The federal 25C and 25D tax credits ended for installations after Dec 31, 2025. Our numbers use 2026 rules. State rebates, HEAR/HOMES programs and utility programs may still apply.

Formula

How it works

  • Design temperature difference = indoor temperature − your state's 99% winter design temperature
  • Heat loss (BTU/h) = square feet × insulation factor × temperature difference (insulation factor: good 0.25, average 0.35, poor 0.50 BTU/h·°F per sq ft)
  • Heating capacity = heat loss × 1.15 (a 15% margin; ACCA Manual S limits heating oversizing to 140%)
  • Tons = heating capacity ÷ 12,000
  • Furnace input = heating capacity ÷ AFUE
  • Cooling capacity = square feet × 20 × climate factor (zone 1 1.3, zone 2 1.2, zone 3 1.1, zone 4 1.0, zone 5 0.9, zone 6 0.85, zones 7–8 0.8)

The design temperature is the outdoor temperature your area stays above 99% of the winter hours. In warm states the cooling number is bigger and sets the size; in zones 5 and colder the heating number is bigger. There are two ways to handle that: size the heat pump for cooling and add backup heat (electric strips or a furnace, "dual fuel") for the coldest hours, or size it for heating with a cold-climate model that keeps its capacity at your design temperature.

An outdoor heat pump unit on a concrete pad with light frost on the gravel.

Sources: 99% design temperatures from ASHRAE Handbook of Fundamentals and ACCA Manual J table 1A (value for each state's most populous city); IECC 2021 climate zones (DOE/PNNL); envelope factors are a simplification of ACCA Manual J; 15% margin within ACCA Manual S limits; cooling rule of thumb from ENERGY STAR room sizing with a climate factor.

Worked example

A worked example

Texas uses a winter design temperature of 25 °F, so the difference is 45 °F (indoor 70 − design 25). A well-insulated 2,500 sq ft house loses 28,125 BTU/h at that temperature. With the 15% margin the heat pump needs about 32,344 BTU/h of heating, 2.7 ton. For cooling, the same house in zone 2 needs about 60,000 BTU/h, so in Texas the cooling load sets the size. Paired with a 95% furnace, the furnace input would be 34,046 BTU/h.

Open this example in the calculator

Reference

By state, at the default inputs

Heating capacity needed, with this page's default inputs and each state's reference prices (EIA reference 2025–26, data as of 2026-09-26).

US average48,300 BTU/h18.4¢/kWh
Alabama40,250 BTU/h15.5¢/kWh
Alaska72,450 BTU/h25.0¢/kWh
Arizona32,200 BTU/h15.0¢/kWh
Arkansas44,275 BTU/h13.0¢/kWh
California28,175 BTU/h32.0¢/kWh
Colorado56,350 BTU/h16.0¢/kWh
Connecticut52,325 BTU/h30.0¢/kWh
Delaware48,300 BTU/h17.0¢/kWh
District of Columbia44,275 BTU/h19.0¢/kWh
Florida28,175 BTU/h15.0¢/kWh
Georgia40,250 BTU/h14.5¢/kWh
Hawaii8,050 BTU/h42.0¢/kWh
Idaho52,325 BTU/h12.0¢/kWh
Illinois60,375 BTU/h17.0¢/kWh
Indiana56,350 BTU/h15.5¢/kWh
Iowa64,400 BTU/h13.5¢/kWh
Kansas52,325 BTU/h14.5¢/kWh
Kentucky52,325 BTU/h13.0¢/kWh
Louisiana36,225 BTU/h12.5¢/kWh
Maine60,375 BTU/h26.0¢/kWh
Maryland48,300 BTU/h19.0¢/kWh
Massachusetts52,325 BTU/h29.0¢/kWh
Michigan56,350 BTU/h19.5¢/kWh
Minnesota68,425 BTU/h15.5¢/kWh
Mississippi40,250 BTU/h13.5¢/kWh
Missouri52,325 BTU/h13.0¢/kWh
Montana68,425 BTU/h13.0¢/kWh
Nebraska60,375 BTU/h12.0¢/kWh
Nevada40,250 BTU/h15.0¢/kWh
New Hampshire60,375 BTU/h27.0¢/kWh
New Jersey48,300 BTU/h22.0¢/kWh
New Mexico44,275 BTU/h15.0¢/kWh
New York48,300 BTU/h25.0¢/kWh
North Carolina40,250 BTU/h14.5¢/kWh
North Dakota72,450 BTU/h11.5¢/kWh
Ohio56,350 BTU/h16.5¢/kWh
Oklahoma48,300 BTU/h13.0¢/kWh
Oregon40,250 BTU/h14.5¢/kWh
Pennsylvania52,325 BTU/h18.5¢/kWh
Rhode Island52,325 BTU/h29.0¢/kWh
South Carolina40,250 BTU/h15.0¢/kWh
South Dakota68,425 BTU/h13.0¢/kWh
Tennessee48,300 BTU/h13.5¢/kWh
Texas36,225 BTU/h15.5¢/kWh
Utah52,325 BTU/h12.0¢/kWh
Vermont64,400 BTU/h22.0¢/kWh
Virginia44,275 BTU/h15.5¢/kWh
Washington40,250 BTU/h12.0¢/kWh
West Virginia52,325 BTU/h15.5¢/kWh
Wisconsin64,400 BTU/h17.5¢/kWh
Wyoming64,400 BTU/h12.5¢/kWh

Questions

FAQ

What size heat pump for 2,000 sq ft?

At the US-average design temperature (10 °F) and average insulation: heat loss 42,000 BTU/h, 48,300 BTU/h with the margin (4.0 tons) for heating, and 40,000 BTU/h for cooling. In Illinois (design −5 °F) the heating number is 60,375 BTU/h, 5.0 tons.

Should I size for heating or cooling?

Compare the two numbers the calculator gives you. If cooling is bigger (Texas: 60,000 cooling vs 32,344 heating for 2,500 sq ft), size for cooling. If heating is much bigger (Minnesota, 1,600 sq ft, poor insulation: 78,200 heating vs 27,200 cooling), either add backup heat or choose a cold-climate model rated for your design temperature.

What is a cold-climate heat pump?

A heat pump built to keep most of its heating capacity at low outdoor temperatures. For a cold state, check the manufacturer's capacity at 5 °F against the heating number above.

Is a bigger heat pump better?

No. An oversized unit short-cycles: it turns on and off often, which wears it out and dehumidifies poorly in summer. That's why the margin is 15%, well inside the Manual S limit.

Does better insulation mean a smaller heat pump?

Yes, in direct proportion. Going from poor (0.50) to good (0.25) halves the heat loss for the same house.

Related