What Size Solar Generator Do I Need? A Step-by-Step Sizing Guide

If you’ve started shopping for a solar generator (also called a portable power station), you’ve probably noticed something frustrating fast: every listing brags about watt-hours, watts, and “peak power” like you’re supposed to already know what those numbers mean for your situation.

Buy too small, and your fridge shuts off at 2 a.m. Buy too big, and you’ve paid an extra $500–$1,000 for capacity you’ll never touch.

The good news is that sizing a solar generator isn’t guesswork. It comes down to two numbers: how much power your devices draw and how much energy you need to store, and a short formula ties them together.

As an ANCE-certified solar technician who’s specified systems ranging from single-panel backup kits to full off-grid arrays, I’ll walk you through exactly how to calculate the right size for your case, whether that’s a weekend campsite, a CPAP machine, or whole-home blackout backup.

The Two Numbers That Actually Matter

Before you look at a single product page, understand the difference between these two specs.

Watts (W)

This is power, the rate at which energy is used at any given moment. It determines whether the generator’s inverter can handle your device at all.

A generator rated for 500W of continuous output can’t run a 1,500W space heater, no matter how big its battery is.

Watt-hours (Wh)

This is energy, the total amount of power stored in the battery. It determines how long your devices will run before the unit is empty.

A 1,000Wh generator running a 100W device will last roughly 10 hours (before accounting for inverter losses).

Get the watts wrong, and your device won’t turn on. Get the watt-hours wrong, and it turns off sooner than you expected. You need to size for both.

Step 1: List Every Device You Plan to Run

Grab a notebook or a spreadsheet and list every device you might power, along with two figures for each:

  1. Running watts: the steady-state power draw (usually printed on a label, sticker, or in the manual)
  2. Starting/surge watts: the brief spike some motor-driven devices need to start (fridges, well pumps, power tools, air conditioners). This can be 2–3x the running wattage for a second or two.

If the wattage isn’t listed, you can calculate it from amps and volts printed on the device: Watts = Volts × Amps.

Most household devices in the U.S. and Mexico run on 120V, so a device pulling 5A draws roughly 600W.

Typical Power Draw by Device

DeviceRunning WattsStarting Watts
Smartphone charging5–10W
Laptop30–65W
LED light bulb8–12W
Wi-Fi router10–20W
CPAP machine (no humidifier)30–60W
Mini fridge60–100W200–300W
Full-size refrigerator100–200W800–1,200W
Box fan50–100W
Microwave600–1,200W
Coffee maker800–1,200W
Window AC unit (5,000 BTU)450–600W1,200–1,800W
Space heater1,200–1,500W
Well pump (1/2 HP)1,000W2,000–3,000W

If you’re weighing whether your solar setup can handle a refrigerator specifically, see our full breakdown of refrigerator power draw and how to size for it.

Step 2: Calculate Your Continuous Power Requirement (Watts)

Add up the running watts of everything you’ll run at the same time, then check that figure against the highest single starting-watt spike you’ll experience (since that spike briefly stacks on top of whatever’s already running).

Example: a weekend camping setup.

  • Mini fridge running: 80W
  • LED lights: 20W
  • Phone charging: 10W
  • Laptop: 50W
  • Total running load: 160W
  • Mini fridge starting surge: 250W (replaces its 80W running draw for a moment)
  • Peak load: 160W − 80W + 250W = 330W

You’d want a solar generator with a continuous output rating of at least 300–500W and a surge rating above 330W to comfortably run this setup, with headroom for inverter inefficiency and future devices.

Rule of thumb

Size your generator’s rated (continuous) wattage output to at least 20–30% above your calculated peak load.

Inverters lose some efficiency (typically 85–95%), and you don’t want to run right at the ceiling constantly, which shortens component life and gives you no room for adding a device later.

Step 3: Calculate Your Energy Storage Requirement (Watt-Hours)

This is the step people skip, and it’s the one that determines whether you’re out of power by dinnertime. Multiply each device’s running watts by the number of hours per day you’ll use it, then add it all up.

Formula: Watts × Hours of Use = Watt-hours needed per day

Example: the same camping setup, run for 24 hours.

DeviceWattsHours/DayWh/Day
Mini fridge (cycles ~50% of the time)80W12960
LED lights20W5100
Phone charging10W220
Laptop50W4200
Total1,280 Wh/day

Add a 20–25% buffer for inverter losses and battery degradation over time, and you land at roughly 1,500–1,600 Wh needed per day.

That points you toward a solar generator in the 1,000–1,500 Wh capacity class if you’re recharging daily with sun, or larger (2,000 Wh+) if you want a full day or two of backup without any recharge at all.

Solar Generator Sizing by Use Case

Use CaseTypical Capacity NeededTypical Continuous Output
Phones, laptops, small electronics only200–500Wh100–300W
CPAP machine overnight backup300–600Wh100–150W
Weekend camping (lights, fridge, devices)1,000–1,500Wh300–600W
Short blackout backup (fridge, Wi-Fi, some lights)1,500–2,500Wh600–1,000W
Multi-day home backup (fridge, lights, fans, chargers)2,000–5,000Wh1,000–2,000W
Running a window AC unit2,000Wh+1,500–2,000W (with surge headroom)
Whole-home essential circuits (fridge, AC, well pump, etc.)3,000Wh+ (often paired with expansion batteries)3,000W+

If you’re deciding between a battery-only backup system and a full solar generator, this comparison of solar batteries vs. generators for backup value breaks down the trade-offs in cost and runtime.

And if the portable power station route isn’t cutting it for your energy needs, our roundup of the best portable power stations compares current models by capacity, weight, and recharge speed.

Don’t Forget Recharge Time (If You’re Pairing With Solar Panels)

Sizing the battery is only half the equation if you plan to recharge via solar panels rather than a wall outlet.

A 1,000 Wh battery paired with a 100 W solar panel will need roughly 10–14 hours of strong, direct sunlight to fully recharge and more on cloudy days.

As a rule, match your panel wattage so that a full recharge is realistically achievable within your available daylight hours, not just on a lab-perfect sunny afternoon.

Most manufacturers list a “max solar input” spec. Check that your panel array doesn’t exceed it and that it comes reasonably close to it if you need fast recharges.

Common Sizing Mistakes to Avoid

Ignoring starting watts

A generator that easily handles a fridge’s running wattage can still shut down or trip if it can’t handle the compressor’s starting surge.

Sizing for “typical” use instead of worst-case

If you might someday run a space heater or window AC, size for that scenario now. Retrofitting later usually means buying a second unit.

Forgetting inverter and battery losses

Real-world usable capacity is typically 85–90% of the rated watt-hour figure, and it drops further as the battery ages, particularly with lithium-ion chemistries.

LiFePO₄ batteries hold their capacity longer over repeated cycles than standard lithium-ion, which matters if you’re sizing for years of regular use rather than occasional backup.

Assuming full sun for solar recharging

Cloud cover, panel angle, and season can cut solar input by 50% or more. Don’t count on textbook conditions.

solar generator

FAQ: Sizing a Solar Generator

How many watt-hours do I need to power my house for a day?

A typical U.S. household uses 28,000–30,000Wh per day, far beyond what a portable solar generator can supply.

Most home backup setups instead focus on essential circuits: refrigerator, some lighting, Wi-Fi, and phone charging, which usually run 2,000–4,000 Wh per day. For true whole-home coverage, you’re looking at a stationary battery system, not a portable unit.

What size solar generator do I need to run a refrigerator?

Plan for at least 1,000–1,500 Wh of capacity and 600W+ of continuous output to run a standard refrigerator for a full day, accounting for its compressor’s starting surge. A more efficient mini fridge can be run on a smaller 500–800Wh unit.

Can a solar generator run a CPAP machine all night?

Yes, most CPAP machines draw only 30–60W without a humidifier, so even a compact 300Wh solar generator can typically power one for 5–8 hours, with room to spare for a phone charge.

Is it better to size up or size down when I’m unsure?

Size up. A slightly oversized solar generator costs more upfront but gives you flexibility to add devices, handles unexpected surge loads safely, and degrades more slowly since it’s rarely run near its maximum capacity.

An undersized unit that trips or dies mid-use is a bigger problem than a few hundred extra watt-hours you don’t use every time.

The Bottom Line

Sizing a solar generator comes down to two calculations: add up your running and surge watts to size the inverter’s continuous output, then multiply watts by hours of use to size the battery’s watt-hour capacity and pad both with a comfortable buffer.

Do that math before you shop, and you’ll avoid the two most common regrets: a unit that can’t start your fridge, or one that runs dry halfway through the day.

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