What Size Generator for Whole House Backup? | Size By Load

Whole-house backup generators are typically sized 18–24 kW; larger homes with multiple air conditioners usually need 22–28 kW.

Square footage makes a terrible ruler for generator sizing. You pick the size by the electrical loads that must stay on when the grid goes dark—not by your home’s area. List everything you want running, add the biggest motor surge, and that arithmetic is the actual answer.

A typical U.S. home ends up between 18 kW and 24 kW. Larger homes, or those with two or more air conditioners, usually need 22 kW to 28 kW. The table below gives a starting range; the five-step method in the next section gives the number behind it.

What Size Generator Do Most Homes Need?

Most U.S. homes sit in the 18–24 kW range. Generac puts smaller homes at 10–18 kW and larger homes with multiple air conditioners or high electrical demand at 22–28 kW.

Whole-house doesn’t mean every circuit at full power all at once. Generac rates its 18 kW Guardian for essential-circuit protection and says it reaches whole-house coverage only when paired with load-shedding switches. Its 22 kW Guardian is pitched as whole-house backup for many homes. Match not just the kilowatt number but the load-management setup that goes with it.

Home Profile Typical Size What It Usually Powers
Smaller home or essential-loads backup 10–18 kW Lights, refrigerator, furnace, well pump, selected circuits
Average home wanting whole-house backup 18–24 kW Most circuits, with load management for large motors
Larger home or multiple air conditioners 22–28 kW Full panel with several big loads expected to run together

Size ranges like these are a starting point, not a substitute for measuring load. Generac’s whole-home size calculator walks through square footage, your household’s electrical usage, and the specific systems needing power during an outage—run it once your load list is finished.

Whole House Backup Generator Sizing: The Five-Step Method

The sizing method is five steps and works the same for every home. Each one changes the final number, so don’t skip ahead to the headroom.

  1. Decide what has to run. During a long outage, do you need the well pump, sump pump, heat, and refrigeration, or the entire panel? That decision alone can move the size by several kilowatts.
  2. Total the running watts of every load that will run at the same time. HVAC, water heater, refrigerator, pumps, and essential electronics all go on the list.
  3. Add the largest starting surge. Electric motors draw far more current in the first seconds than while running, so the biggest air conditioner compressor or pump usually decides the final size.
  4. Apply derating for site conditions. Generator output drops with high altitude and extreme heat, so the same home may need extra capacity in Denver that it wouldn’t need at sea level.
  5. Add 20–25% headroom and round up to the next standard size. That cushion covers aging motors, added appliances, and voltage dips a tightly sized generator can’t absorb.

If you have a year of electric bills, cross-check your result against the highest monthly demand you actually hit. Some Generac sizing guidance calls for a unit 25% larger than that peak, which catches seasonal loads a mental list tends to forget. Before committing to a model, read our tested whole-house generator roundup to see how each candidate handles surge ratings and load shedding.

One more constraint: whole-house standby is not a portable-generator setup. It needs proper transfer equipment, a permanent fuel supply (usually natural gas or propane), and local code approval. Have a licensed installer confirm the model against your panel capacity and fuel-system sizing before you buy.

Sizing Mistakes That Push The Final Number Up

Most wrong-size purchases come from one of five predictable mistakes:

  • Sizing from square footage alone instead of an actual load list.
  • Ignoring locked-rotor current or starting watts from large motors.
  • Forgetting that some generators need load-shedding switches before they can cover a whole panel.
  • Skipping derating for altitude or heat.
  • Choosing a generator before the transfer switch, fuel system, and local code requirements are figured out.

Don’t mistake load management for a limitation—it’s how modern whole-house systems keep a smaller unit affordable and still power everything that matters. A system that staggers the well pump, water heater, and HVAC loads can run on a fraction of the capacity a simultaneous-everything design would need.

The upshot: a typical U.S. home can plan on 18–24 kW, and a larger home with several big motors should plan on 22–28 kW. The final number comes from your load list plus the largest surge, not from square footage. Run the five steps, then have a licensed installer verify the result before you spend.

FAQs

Can I size a whole-house generator by square footage alone?

No. Square footage says little about actual electrical load. Two same-size homes can differ by several kilowatts when one has electric water heating, a well pump, and central air while the other runs on gas and needs none of those. A load list is the only reliable starting point.

Will a 22 kW generator run a whole house?

For many homes, yes. Generac markets the 22 kW Guardian as capable of whole-house backup power for many homes, so with typical loads this size can usually carry the full panel. Homes with several air conditioners or heavy simultaneous electric use may need a bigger unit or load-shedding switches instead.

Why does starting wattage matter when sizing a generator?

Electric motors pull far more power in the instant they start than they use while running. An air conditioner compressor or well pump can draw several times its normal running watts for a couple of seconds. If the generator can’t cover that surge, the motor won’t start or the breaker trips.

References & Sources

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