FurnaceTallyInput BTU, output BTU, and the gap nobody explains.

What size furnace does a 2600 sq ft house in Tampa, FL need?

2,600 ft² in Tampa, FL — 96% AFUE
80,000BTU/hr input
76,800 BTU/hr actually delivered — sized from a 41°F design day
2,600 ft² in Tampa, FL — 96% AFUE80,000 BTU/hrFurnace input rat…76,800 BTU/hrHeat actually del…69,680 BTU/hrCalculated heat l…58 thermsGas used per heat…
Furnace input rating to buy80,000BTU/hr
Heat actually delivered80,000 × 96% AFUE — the number that heats the house76,800BTU/hr
Calculated heat loss2,600 ft² × 26.8 BTU/ft²69,680BTU/hr
Winter design temperature99% design dry bulb, 2015–2024 — colder on about 4 days a year41°F
Design temperature difference70°F indoors against 41°F outdoors — this sets the whole calculation29°F
Heat loss per square foot9.4 + 0.60 × 29°F26.8BTU/ft²
Heating degree daysbase 65°F, annual average313°F-days
Nights at or below freezing0nights/yr
Gas used per heating seasonfrom measured household consumption, not from the sizing figure above58therms
Heating cost per yearat $1.42/therm, the national residential average$82
Oversize after rounding upwithin the normal step10%
Same house at a 35°F design day79,040BTU/hr
Same house at a −20°F design day2.09× spread for the identical building164,840BTU/hr

Notes

  • Tampa designs to 41°F, and that single number drives everything above. Heat loss is very close to a straight line in the indoor–outdoor difference, so a 29°F design difference gives 26.8 BTU per square foot per hour. The same house needs 79 MBH on a 35°F design day and 165 MBH at −20°F — a factor of 2.09, which is why a national "40 BTU per square foot" figure is useless in both directions.
  • Two BTU numbers, and the box shows the bigger one. A 80,000 BTU/hr furnace at 96% AFUE puts 76,800 BTU/hr into the house; the rest goes up the flue. condensing, the common high-efficiency tier. The mistake to avoid is keeping the old input rating when moving to a higher efficiency — swapping an 80% unit for a 96% unit at the same input adds 12,800 BTU/hr of delivered heat the house never asked for.
  • Oversizing is the expensive mistake, not undersizing. An oversized furnace satisfies the thermostat in a few minutes, shuts off, and repeats — hard on the heat exchanger and the igniter, and it leaves the house with hot-then-cold swings and cold rooms at the ends of the duct runs. Undersizing costs comfort on the four coldest nights of the year; oversizing costs comfort on all of them.
  • Fuel, roughly — and it does not come from the number above. 313 heating degree days on a 2,600 ft² house works out to about 58 therms a season, 82 dollars at the national average gas price. That figure is calibrated against what households actually burn, not scaled from the sizing rule of thumb — and the two disagree by a factor of about 3.2, because the sizing table is deliberately conservative. Going from 80% to 96% AFUE here saves roughly $16 a year against an installed price difference usually in the $1,000–2,000 range, so the payback is a real calculation and not an obvious yes.
  • This is a heat loss estimate, not a Manual J. The real one counts window area and orientation, insulation R-values, measured air leakage, ceiling height, duct location and how many people live in the house. A tight new build in Tampa can come in a third below this figure; a 1950s house with original windows and no wall insulation can come in a third above. Ask for the Manual J before signing — it costs a few hundred dollars on a $5,000–10,000 installation, and it is the only thing that turns the number above into a specification.
  • Where the design temperature comes from. It is the 1st percentile of daily low temperatures at Tampa International Airport, 8 km from downtown Tampa, over 2015–2024 — the same kind of airport station ASHRAE measures at. The percentile was calibrated against eight airports with published ASHRAE values and reproduces them to within 2.2°F on average. Expect a degree or two of difference from a printed table; that is far smaller than the uncertainty in the house itself.

The short answer

A 2600 square foot house in Tampa, FL needs a furnace rated about 80,000 BTU per hour of input at 96% AFUE, which delivers 76,800 BTU/hr into the house.

Where that number comes from

Tampa, FL designs to 41°F — the temperature it drops below on roughly four nights a year. Against 70°F indoors that is a 29°F difference, and heat loss is very nearly a straight line in that difference: 26.8 BTU per square foot per hour here.

This is the reason a single national "40 BTU per square foot" figure is wrong in both directions. The same house wants 79,040 BTU/hr where the design night is 35°F and 164,840 BTU/hr where it is −20°F.

Input is not output

The rating on the box is fuel burned, not heat delivered. At 96% AFUE a 80,000 BTU/hr furnace puts 76,800 BTU/hr into the rooms. Keeping the old input rating when moving to a higher efficiency is the most common way a replacement ends up oversized.

What it costs to run

Tampa, FL runs 313 heating degree days a year. This house at 96% AFUE burns roughly 58 therms a season — about $82 at the national average gas price.

Before you buy

Ask for the Manual J. A few hundred dollars on a five-figure installation, and it is the only thing that turns the estimate above into a specification.

Nearby sizes

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