Sizing an array for a single appliance is the clearest way to understand solar, because it strips the question down to one load, one number of hours, and one amount of sunlight. Here is that calculation for a space heater, with the assumptions stated so you can change them.
A space heater drawing 1,500 W for 6 hours a day uses 9.00 kWh of electricity. At 4.5 peak sun hours and a 20 percent system derate, that needs about 7 standard 400 W panels, an array of roughly 2.80 kW. Fewer in Arizona, more in Seattle.
Calculate it for your own space heater
Change any box. The result updates as you type.
Planning estimate. The rate box is prefilled with a regional average; the figure on your own bill is the one that matters. Power is draw while running, not while switched on.
The arithmetic, with this appliance in it
Four steps, and none of them are difficult:
- Daily energy. 1,500 W multiplied by 6 hours, divided by 1,000, gives 9.00 kWh per day.
- Panel output. A 400 W panel at 4.5 peak sun hours produces 1.8 kWh on paper.
- Apply the derate. Inverter conversion, wiring, heat, dust and imperfect orientation take roughly 20 percent, leaving about 1.44 kWh per panel per day.
- Divide. 9.00 kWh divided by 1.44 kWh gives 7 panels, rounded up.
Peak sun hours is not the same as daylight hours. It is the number of hours of full-strength sun the day is equivalent to, which is why a 14-hour summer day might only count as five.
Panels needed by panel size
Larger panels mean fewer of them, not less roof area. Output per square metre has barely changed; the modules simply got bigger.
| Panel rating | Output per panel per day | Panels needed | Array size |
|---|---|---|---|
| 300 W | 1.08 kWh | 9 | 2.70 kW |
| 400 W | 1.44 kWh | 7 | 2.80 kW |
| 450 W | 1.62 kWh | 6 | 2.70 kW |
| 500 W | 1.80 kWh | 5 | 2.50 kW |
| 600 W | 2.16 kWh | 5 | 3.00 kW |
How many panels where you live
Location changes this more than any other input. The same space heater needs roughly twice the array in the Pacific Northwest that it needs in southern Arizona.
| Peak sun hours | Roughly where | Panels needed | Array size |
|---|---|---|---|
| 3 h | Seattle, Anchorage | 10 | 4.00 kW |
| 3.5 h | Chicago, Boston | 9 | 3.60 kW |
| 4 h | New York, Portland | 8 | 3.20 kW |
| 4.5 h | Atlanta, Kansas City | 7 | 2.80 kW |
| 5 h | Dallas, Los Angeles | 6 | 2.40 kW |
| 5.5 h | Phoenix, Albuquerque | 6 | 2.40 kW |
| 6 h | Southern Arizona, Hawaii | 5 | 2.00 kW |
For a figure based on your actual coordinates rather than a regional band, use the location-based solar production calculator.
Panels alone will not run it
Resistance heating is the worst possible solar load. It draws full rated power the whole time it runs and there is no efficiency to gain, so the panel count is driven purely by hours of use.Solar produces during the day. If the load runs when the sun is down, that energy has to come out of a battery, and the battery has to be larger than the energy it delivers because you never discharge it fully.
| Autonomy | Energy required | Usable battery at 80% depth of discharge | At 48 V |
|---|---|---|---|
| Overnight only | 5.00 kWh | 6.25 kWh | 130 Ah |
| One full day | 10.00 kWh | 12.50 kWh | 260 Ah |
| 2 days | 20.00 kWh | 25.00 kWh | 521 Ah |
| 3 days | 30.00 kWh | 37.50 kWh | 781 Ah |
Inverter sizing for a space heater
No surge. A 1,500 W heater needs a 2,000 W continuous inverter and nothing more.| Running power | 1,500 W |
|---|---|
| Start-up surge | 1,500 W (1x running) |
| Minimum continuous inverter | 1,900 W |
| Minimum surge capability | 1,500 W |
| Current at 48 V DC | 34.7 A |
Inverters are rated for continuous output and, separately, for a brief surge. An inverter that can run the load but not start it is a common and frustrating way to undersize a system.
Why heating is the hardest thing to put on solar
Electric heat is where solar arithmetic stops being flattering. The load peaks in December and January, which is exactly when a fixed array produces least, often half its summer output. So the panel count above, calculated on an annual-average sun figure, understates what you would actually need in the months you need it.
If the goal is winter heating on solar, size the array on your worst month rather than your average one, or accept that the grid covers the shortfall. The other option is to reduce the load itself. A heat pump delivering three units of heat per unit of electricity cuts the required array by roughly two thirds compared with resistance heating.
What it costs to run on the grid
For comparison, running the same space heater from the grid costs $1.66 a day and $606 a year at current average rates. The full breakdown is on our space heater running cost page.
Questions people actually ask
How many solar panels does it take to run a space heater?
How much electricity does a space heater use per day?
What size inverter do I need for a space heater?
Can I run a space heater on solar without a battery?
Size the whole system, not one appliance
- Solar System Size Calculator for the whole house rather than one load.
- Solar Panel Count Calculator to work backwards from a target array size.
- Usable Battery Capacity Calculator for depth of discharge and real usable kWh.
- Inverter Size Calculator for combined loads and surge.
- Off-Grid Solar System Sizing Calculator if there is no grid connection at all.
Costs on this page use a national average residential rate of 18.44¢ per kWh (August 2026, EIA-derived state residential averages). Your own rate is printed on your electricity bill and is the number that actually matters. Every figure here is recalculated from one central rate setting, so these tables move when the national average moves.