TonnageMapHow many tons your house actually needs, and what the swap costs.

What size AC does a 1400 sq ft house in Anaheim, CA need?

1,400 ft² in Anaheim, CA
3tons
31,053 BTU/hr — 467 ft² per ton at a 93°F design day
1,400 ft² in Anaheim, CA3 tonsNominal size to b…2.59 tonsCalculated need1,425 kWh/yrCooling energy at…3.4 tonsSame house on the…
Nominal size to buy3tons
Calculated need1,400 ft² × 22.2 BTU/ft², interpolated from 1,428 cooling degree days2.59tons
Summer design temperature1% design dry bulb at Long Beach Airport — the level the air is above for 1% of the year's hours93°F
Winter design temperature99% design dry bulb — the number a heating load starts from40°F
Cooling design difference93°F outside against 75°F inside18°F
Summer day–night swingJune–August average — a moderately humid climate, and humidity is what sets the latent load17°F
Days at or above 90°F23days/yr
Cooling degree daysbase 65°F, annual average1,428°F-days
Heating degree daysbase 65°F, annual average947°F-days
Cooling energy at SEER 141,425kWh/yr
Cooling cost per yearat 16.7¢/kWh, the national residential average$237
Oversize from rounding upenough to matter — see the note16%
Equivalent full-load hourshow long the compressor runs at full output over a season643hr/yr
Same house on the Gulf coastaround 5,100 cooling degree days3.4tons
Same house in the upper Midwest1.58× spread for the identical building2.1tons

Notes

  • This is a rule of thumb keyed to Anaheim's climate, not a Manual J. The tonnage above comes from 22.2 BTU per square foot. That figure is not a lookup: the industry's zone table turns out to be a degree-day table in disguise, so it is interpolated continuously against Anaheim's own 1,428 cooling degree days — two cities in the same zone 800 degree-days apart do not get the same answer here. What Anaheim actually contributes is the two design temperatures — 93°F in summer and 40°F in winter — and those are the numbers a real load calculation begins from. A house here with new windows and a sealed envelope can come in a full ton under this; a 1960s house with an uninsulated attic can come in a ton over.
  • In Anaheim the humidity matters more than the heat. Summer nights fall only 17°F below the afternoon high, and that narrow swing is the signature of humid air — water vapour holds the night temperature up. It means a large share of the machine's work is pulling water out of the air, not lowering temperature — and that work only happens while the compressor is actually running. An oversized unit here cools the room fast, shuts off, and leaves the moisture behind: the house reads 75°F on the thermostat and still feels clammy. This is the climate where buying one size up "to be safe" backfires hardest, and where variable-speed equipment earns its price difference.
  • 23 days a year reach 90°F here, and the design temperature is 93°F. Equipment is sized for the 1% condition, not the hottest hour on record — which means on the hottest afternoons of the year this system is expected to run continuously and still drift a degree or two above setpoint. That is the intended behaviour. Sizing for the record high instead would leave the unit oversized for the other 361 days, short-cycling through all of them.
  • Rounding up to 3 tons puts this 16% above the calculated load. Nominal sizes jump in half-ton steps and there is nothing between them, so ask whether two-stage or variable-capacity equipment at this size makes sense — that hardware can run at part load and sidestep the oversizing, which single-stage equipment cannot.
  • Running cost, roughly. 1,428 cooling degree days works out to about 643 equivalent full-load hours here — the number of hours the compressor would run at full output if it ran flat out instead of cycling. At SEER 14 that is 1,425 kWh a season, about $237 at the national average rate. Moving to SEER 18 would cut it to roughly $185 a year — worth less here than the brochures suggest, because the system simply does not run enough hours to earn the difference back quickly.
  • About the climate figures. Everything above is computed from ERA5 reanalysis at Anaheim's own coordinates over 2015–2024, not copied from a table: 947 heating and 1,428 cooling degree days, base 65°F. The zone shown alongside is derived from those degree days against the ASHRAE 169 boundaries — your building department assigns zones by county from older climate normals and may list a different one, so go by the county table when you are pulling a permit. City-centre readings also run a degree or two warmer than the airport station most published tables use.

The short answer

A 1400 square foot house in Anaheim, CA needs about 3 tons — 31,053 BTU per hour, which is square feet per ton.

Where that number comes from

Anaheim, CA sees 93°F on a design summer day and runs 1,428 cooling degree days in an average year. Feed those into the load and the house wants 22.18048216879947 BTU per square foot per hour.

The familiar "400 square feet per ton" rule works out to here instead, and that gap is the whole point of asking the question by city rather than by rule.

What the humidity does

The June-to-August dew point averages °F in Anaheim, CA. Dew point, not temperature, is what decides how much of the machine's work goes into pulling water out of the air — and that work only happens while the compressor is running.

What it costs to run

At SEER 14, cooling this house through a Anaheim, CA summer takes roughly 1,425 kWh, about $237 at the national average electricity price.

Before you buy

The number above is a rule of thumb sized to Anaheim, CA's climate. A Manual J load calculation is the real answer, and it is the one that accounts for your windows, your insulation and your air leakage. Ask for it before signing.

Nearby sizes

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