Every off-grid system starts here. List what you run, how long you run it and whether it is AC or DC, and this returns the watt-hours your battery bank actually has to deliver each day, the amp-hours that comes to at your system voltage, and the peak load your inverter has to survive. AC loads are charged the inverter's conversion loss; DC loads are not.
| Appliance | Watts | Hours/day | Qty | AC/DC | Remove |
|---|
Free download
DC cable ampacity with the ambient and bundling corrections, how far each size runs at 12, 24 and 48 V, PV string fuse sizes from Isc, and battery-to-inverter current by inverter size. Three pages, made to pin by the battery bank.
Each row contributes watts times quantity times hours. The two totals are then treated differently, because an AC load has to come through the inverter and a DC load does not:
Each row on its own is just watts times hours, which the watt hour calculator does for a single appliance in Wh, kWh and amp-hours. The answer here is watt-hours at the battery, not watt-hours at the socket. That distinction is where most self-built systems lose their margin: adding up appliance nameplates gives a number 8% to 15% below what the bank actually has to hold, and the shortfall only shows up in the second week of poor weather.
The loads the calculator opens with, on a 12 V system, a 90% inverter and 97% wiring:
| Load | W × qty | h/day | Type | Wh/day |
|---|---|---|---|---|
| LED lights | 15 | 4 | DC | 60 |
| Compressor fridge | 45 | 10 | DC | 450 |
| Water pump | 60 | 0.5 | DC | 30 |
| Roof fan | 25 | 6 | DC | 150 |
| Laptop | 60 | 4 | AC | 240 |
| Phone chargers ×2 | 20 | 3 | AC | 60 |
The appliances themselves only asked for 990 Wh. The extra 65 Wh is the conversion and wiring overhead, and it is real energy the array has to replace every day.
The daily kWh figure feeds the battery bank size calculator and the solar system size calculator, in that order: the bank carries you through the nights and the bad days, and the array replaces what the bank lost. The peak watts figure feeds the inverter sizing calculator, which is a completely separate question and is answered by the largest instantaneous draw rather than by the daily total.
Very few appliances draw their rated power for the hours they are switched on. Anything with a thermostat cycles, and the hours column has to carry the running time rather than the connected time. A fridge plugged in for 24 hours might only run its compressor for 10. Entering 24 in the hours column for a 45 W fridge overstates its consumption by more than a whole kWh a day, which is often larger than the entire rest of the van.
| Appliance | Rated draw | Hours to enter | Why |
|---|---|---|---|
| 12V compressor fridge | 40 to 60 W | 8 to 12 | Compressor cycles; more in hot weather, less in winter |
| Chest freezer | 80 to 120 W | 6 to 10 | Better insulated than a fridge, so a lower duty cycle |
| Air conditioner | 700 to 1,500 W | 4 to 8 | Cycles against the thermostat, not continuous |
| Water pump | 50 to 90 W | 0.2 to 1 | Runs only while a tap is open or pressure drops |
| Electric kettle | 1,500 to 2,200 W | 0.1 to 0.25 | Huge draw, tiny duration; matters for the inverter, not the bank |
| Laptop | 30 to 90 W | Actual use | Charger rating is a maximum, not a draw; measure if it matters |
| Starlink / router | 40 to 75 W | Hours powered | Genuinely continuous, and usually the second-biggest load |
| Diesel heater | 10 to 40 W running | Hours of use | Glow plug draws 100 W plus, but only for two minutes per start |
If a single load is more than about a quarter of your total, measure it rather than estimating it. A plug-in energy meter for an AC load, or a shunt-based battery monitor for a DC one, will settle in a week what a spreadsheet argues about for months.
List every appliance with its running wattage, how many hours a day it actually runs, and how many of them you have. Multiply those three together for each one and add the results up to get watt-hours per day. Then divide the AC portion by your inverter efficiency, because AC loads cost the battery more than their nameplate, and divide the whole thing by a wiring efficiency of about 0.97. What comes out is the energy your bank has to deliver daily, which is the number every other off-grid calculation depends on.
A DC load runs straight off the battery at battery voltage, so a 45 W DC fridge takes 45 W from the bank. An AC load has to pass through the inverter, which converts DC to AC at roughly 85 to 93% efficiency, so a 45 W AC appliance takes about 50 W from the bank. Over a full day that gap adds up, and on systems that run most loads on AC it is worth 10% of the whole bank. Wiring anything that comes in a 12 V version, particularly fridges, lights and fans, directly to DC removes that loss entirely.
Only as a starting point. Nameplate ratings are maximum draw under worst-case conditions, and many appliances never reach them: a 90 W laptop charger might average 35 W, and anything thermostatically controlled draws its rated power only while the compressor or element is on. Use the rated figure in the watts column but put the real running time in the hours column, and measure anything that dominates the total.
Between 10 and 20% on top of a carefully itemised list, and more if the list was quick. The commonest reasons real consumption exceeds the estimate are loads nobody wrote down, phantom draws from anything left plugged in, and hotter weather making the fridge work harder. Adding margin here is far cheaper than adding it later, because both the bank and the array scale off this one number.
It is the starting point, but it assumes everything runs at once, which is usually pessimistic in a house and roughly right in a van. Judge which loads genuinely coincide, then add headroom and check the surge requirement separately, because motors and compressors draw two to seven times their running current for the first second. The inverter sizing calculator handles both parts.
Continue with these related solar tools
Battery bank capacity in Ah and kWh from daily use, days of autonomy, depth of discharge and temperature
Continuous and surge inverter rating from your load, plus the DC input current the battery cable has to carry
What size solar system you need in kW, from daily kWh use, peak sun hours and system losses
Add this free calculator to your website. Copy the code below and paste it into your page.
Free solar and off-grid sizing calculators
© 2026 Solar Sizing Calculator. All rights reserved. A Nomogram Works site.