Greenhouse Heater Size Calculator

Greenhouse Heater Size Calculator

Estimate greenhouse heater output from length, width, height, glazing U-factor, target temperature rise, calculated envelope area, infiltration, climate exposure, and safety margin.

1Greenhouse presets

Choose a starting point for a common greenhouse shape, glazing, and winter exposure, then adjust every input to match the actual structure.

2Calculator inputs
Dimensions are feet, area is square feet, temperature rise is °F.
Shape adjusts the roof and exposed wall surface area estimate.
Measure the heated length along the floor.
Use inside dimensions for tight estimates.
Use average heated height, not the peak only.
For gable roofs, enter rise above wall height; for hoops, use arch depth.
U-factor is BTU/hr per sq ft per °F.
Target inside temperature minus cold outdoor design temperature.
Manual mode is useful for unusual roof frames or partial insulation.
Enter exposed glazing and wall area only, excluding the floor.
Use 0.5 for tight houses, 1.5 for normal, 3.0 for leaky structures.
Exposure factor accounts for wind wash and colder design nights.
Add capacity for thermostat cycling, heater placement, and forecast error.
Use 100 for electric resistance heat; lower for vented fuel appliances.
Results update from greenhouse envelope heat loss, infiltration heat loss, climate factor, efficiency, and safety margin.

Heater sizing result

Recommended output
0
BTU/hr after margin
Electric equivalent
0
watts / kW
Surface heat loss
0
BTU/hr before multipliers
Infiltration heat loss
0
BTU/hr from air exchange
Footprint and volume0
Calculated surface area0
Glazing U-factor0
Temperature rise0
Envelope formula0
Infiltration formula0
Base heat load0
Climate adjusted load0
Safety margin0
Efficiency adjustment0
Final output in watts0
Practical heater grouping0
3Heat factor cards
1.20
Single poly U-factor
0.58
Twinwall U-factor
0.018
Air BTU constant
3.412
BTU per watt
4Reference tables
Glazing heat loss values
Glazing type U-factor Rough R-value Best calculator use
Single polyethylene film1.20 BTU/hr ft² °FR-0.8Simple seasonal tunnels and quick covers
Single glass1.13 BTU/hr ft² °FR-0.9Traditional glass greenhouse walls
Double inflated polyethylene0.70 BTU/hr ft² °FR-1.4Winter tunnel covers with air gap
Twinwall polycarbonate0.58 BTU/hr ft² °FR-1.7Common hobby greenhouse panels
Triplewall polycarbonate0.42 BTU/hr ft² °FR-2.4Colder climates and warm crops
Mixed insulated base panels0.35 BTU/hr ft² °FR-2.9Part-wall insulation with glazing above
Infiltration and air exchange guide
Greenhouse condition ACH input Typical signs Heat result effect
Tight panels and sealed doors0.5 to 0.8Minimal drafts around vents and framesLower infiltration BTU/hr
Normal hobby greenhouse1.0 to 1.5Some gaps at glazing clips and door sealsBalanced default estimate
Older glass or loose film1.8 to 2.5Visible drafts, worn weatherstrip, lapped plasticNoticeably higher heater size
Windy hoop or vent gaps2.5 to 3.5Moving cover, roll-up sides, leaky end wallsLarge extra heat allowance
Temporary frost protection3.0 to 4.0Quick cover, imperfect edges, short durationUse high margin and check often
Temperature rise planning
Target use Example outside Example inside Temp rise input
Light frost hold25°F / -4°C35°F / 2°C10°F / 6°C
Cool greens20°F / -7°C45°F / 7°C25°F / 14°C
Seed starting15°F / -9°C55°F / 13°C40°F / 22°C
Warm crops10°F / -12°C65°F / 18°C55°F / 31°C
Tropical holding20°F / -7°C70°F / 21°C50°F / 28°C
Common greenhouse sizing examples
Greenhouse Approx envelope Moderate heat rise What changes the result
4 ft x 8 ft seedling house150 to 190 sq ftSmall portable outputGlazing and door gaps dominate
8 ft x 10 ft hobby house330 to 430 sq ftMid-size room-heater outputRoof shape and ACH matter
12 ft x 16 ft winter tunnel650 to 820 sq ftMultiple heaters may stage betterDouble poly lowers loss sharply
14 ft x 48 ft market tunnel1,800 to 2,300 sq ftHigh output with circulation fansWind exposure can be decisive
30 ft x 72 ft hoop house5,000+ sq ftLarge staged heat systemUse measured area when possible
5Calculation tips
Use the real design night: The temperature rise input should come from the indoor plant target minus the coldest outdoor temperature you want the heater to handle, not from an average winter day.
Measure leaks honestly: A small greenhouse with loose doors can lose more heat through air exchange than through the glazing surface, so the ACH input is worth tuning.

When the weather gets realy cold, it sneaks up on us sometimes, doesn’t it? The temperature drop fast, and then there we are in our greenhouse with a thermometer wondering how to make sure our seedlings don’t freeze. Heat escapes incrementally, gradually building up toward disaster, and intuition’s no help; it builds slowly, silently. Think of the greenhouse more like a thermal system different than merely a shelter, and think of getting the heating correctly sized as a matter of life and death for plants inside, not you.

Once you input the size of your roof and what kind of glazing it has, the calculator do the math. First it considers the envelope, total surface area exposed to the cold. That’s the roof, plus walls beneath the roof (and panels over those walls). The bigger the hoop house, the more energy it require compared to a little lean-to. Here, the shape of the roof also count: A steep gable will add some vertical wall area, so it increases total square footage to be heated.

How to Size Your Greenhouse Heater

The second big variable is type of glazing. This refers to the material itself and determines how quickly heat escape through it. Inexpensive single polyethylene film has a high U-factor (i.e. Low resistance to heat flow). Double-inflated poly and twinwall polycarbonate does better at trapping air layers that reduce rate of loss. Single cover may be enough if your climate is relatively mild; otherwise upgrading the glazing tends to cost less then stepping up to a bigger heater during tough winters. The tool includes those differences, and you don’t need to remember thermal conductivity numbers yourself.

Many growers forget about this invisible cost: Air infiltration. Unless it’s a very tightly sealed greenhouse, some amount of cold air leak in and forces out warm air continually. One figure requested by the calculator is the “air change” rate, meaning number of times the interior air exchange with outdoor air during each hour. A drafty tunnel might have three or four changes. A super-tight hobby house may have fewer than one. This can multiply heat load considerably, making air sealing even more important then turning up the thermostat.

Secondly, what’s the temperature increase that you’re trying to achieve? This means finding difference between coldest night you expect and the lowest temperature your plants will survive. Maintaining a 35-degree greenhouse in 10-degree weather is doable; maintaining a 50-degree one isn’t so easy. People typically miscalculate for their anticipated “average” winter night rather than the worst-case minimum for which they are designing, leaving themselves insufficient power for super-cold nights. It’s smart to factor in some safety buffer since heaters turns on and off, and no real-life system is ever perfectly efficient because of duct losses.

What does that translate into? The answer is in final output: the wattage and BTUs your heat needs. That is just a straight-up number. It reflects the combination of your own goals, your climate, and particular structure where you are growing. And once you have that number, you know what size heat to get, whether it be a propane unit, an electric element, or a water-based system that meets the load.

When you’ve sized right, you’ll worry less about frost, your plants will thrive and your energy bill stays predictable. Winter gardening becomes ordered instead of challenging. You should of used this tool sooner.

Greenhouse Heater Size Calculator

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