How to Size a Full-Time Off-Grid Home Solar System #
A real-world walkthrough using heavy home loads and all-in-one solutions like the EG4 12000XP — covering daily loads, peak demand, battery sizing, and solar array sizing done right.
Why sizing matters more at full scale #
A van or weekend cabin can forgive rough estimates. A full-time off-grid home cannot. You have an HVAC system, a well pump, a washer/dryer, a refrigerator running 24/7, and a family that expects the lights to stay on — all simultaneously.
There are three distinct sizing calculations that each answer a different question: daily energy consumption tells you how much you use, peak load tells you how powerful your inverter needs to be, and battery bank size drives how large your solar array must be. Miss any one of them and the whole system either undershoots or costs far more than it should.
Meet the EG4 12000XP #
The EG4 12000XP is a popular all-in-one hybrid inverter built for serious off-grid and grid-hybrid homes. It combines a solar charge controller, battery inverter/charger, and grid/generator input into a single unit — no need to wire separate components together.
All-in-One Hybrid Inverter / Charger #
Step 1 — Calculate your daily energy load #
Your daily energy load is the total watt-hours (Wh) your home consumes in a typical day. This drives battery bank sizing and confirms your system can sustain your lifestyle. For each appliance, multiply its wattage by the average hours it runs per day.
Below is a realistic load profile for a 3-bedroom off-grid home with a family of four in a moderate climate — think Texas hill country or rural Tennessee.
| Appliance | Running Watts | Hrs/Day | Daily Wh |
|---|---|---|---|
| Mini-split heat pump (2-ton) | 1,800W | 8 | 14,400 |
| Refrigerator (full-size) | 150W | 10 | 1,500 |
| Chest freezer | 100W | 8 | 800 |
| Well pump (1 HP) | 750W | 2 | 1,500 |
| Washing machine | 500W | 1.5 | 750 |
| Clothes dryer (heat pump type) | 800W | 1.5 | 1,200 |
| LED lighting (whole home) | 200W | 6 | 1,200 |
| Laptops, phones, tablets (×4) | 120W | 6 | 720 |
| TV / entertainment system | 250W | 4 | 1,000 |
| Router / networking gear | 30W | 24 | 720 |
| Misc (microwave, coffee maker, etc.) | 600W | 1 | 600 |
| Raw daily total | 24,390 Wh | ||
| With 25% efficiency buffer | ~30,500 Wh/day | ||
Step 2 — Determine your peak load #
Peak load is the maximum wattage your system must deliver at any single moment. This is what determines how many inverters you need — not your daily average. An inverter that can’t handle your peak demand will trip, stall motors, or shut down at exactly the wrong time.
The key distinction here is running watts vs. surge (startup) watts. Traditional PSC-motor HVAC systems, well pumps, and refrigerator compressors draw 3–5× their running wattage for the first few seconds on startup. Your inverter’s surge rating must cover that spike.
| Appliance | Running Watts | Surge Watts | Notes |
|---|---|---|---|
| Standard 2-ton central AC (PSC motor) | 2,500W | 7,500–10,000W | Hard motor start — largest surge load in most homes |
| Well pump (1 HP) | 750W | 2,250W | PSC motor — surges on every cycle start |
| Refrigerator compressor | 150W | 500–600W | PSC motor — cycles on several times per hour |
| Mini-split heat pump (2-ton) | 1,800W | ~1,800W | Inverter-driven ECM motor — no meaningful startup surge |
| Washing machine | 500W | ~1,000W | Modest surge on drum motor start |
| LED lighting | 200W | 200W | Resistive — no surge |
| TV + networking + devices | 400W | 400W | No surge |
| Microwave | 1,200W | 1,200W | Resistive — no surge |
| Worst-case simultaneous running watts | ~7,000–7,500W continuous | ||
| Peak surge — AC + well pump starting together | ~12,000–13,000W for ≈10 seconds | ||
Now let’s check that against the EG4 12000XP:
Step 3 — Size your battery bank #
For a full-time home, target at least 2 days of autonomy — meaning you can run normally for two days with zero solar input before needing a generator. In cloudier climates, go for 3 days.
We’ll use lithium iron phosphate (LiFePO4) batteries — the right choice at this scale. Safer chemistry, 80% usable depth of discharge, 3,000–6,000 cycle life, and native CAN bus communication with the EG4.
Round up to a 76.8 kWh battery bank.
In practice: 16× EG4 LifePower4 48V 100Ah batteries (4,800 Wh each) wired in parallel = 76.8 kWh total.
Or: 4× EG4 PowerPro 48V 200Ah rack batteries per stack × 2 stacks = 76.8 kWh.
Step 4 — Size your solar array #
The solar array’s job is to fully recharge your battery bank within one good sun day — while also covering whatever loads are running during that same day. Sizing off daily consumption alone misses this: after a cloudy stretch or a heavy night, you need to fully recover the bank before the next evening arrives.
The EG4 12000XP’s MPPT charger maxes out at 250A × 48V = 12,000W of charging power. That’s your hard ceiling on how fast you can push energy back into the batteries from solar. Your array needs to be large enough to hit that charge rate during peak sun hours — after accounting for wiring losses, temperature derating, and the power simultaneously consumed by your daytime loads.
But your daytime loads are also running during those same sun hours — pulling roughly 3,000–4,000W continuously from the array before any power reaches the batteries. Add that back in:
19,200W (recharge) + ~3,500W (daytime loads) = ~22,700W total array output needed at peak
The EG4 12000XP can actively utilize up to 24,000W of solar input and will accept up to 28,000W of installed panel capacity. Installing 24,000W (24 kW) of panels saturates the inverter’s usable solar input, covers daytime loads, and gives the array real-world derating headroom for heat, soiling, and less-than-perfect sun angles.
In practice: 48× 500W panels = 24,000W. Wire as four strings of 12 into the EG4’s dual MPPT inputs via a combiner.
What’s built in vs. what you still need #
| Component | EG4 12000XP Status | Notes |
|---|---|---|
| Solar charge controller (MPPT) | Built in | Dual MPPT, 24kW usable / 28kW accepted, 500V max per string |
| Battery inverter/charger | Built in | 12,000W continuous, 15,360W surge (≈10s), 250A / 12,000W charge rate at 48V |
| Grid / generator auto-transfer | Built in | Handles grid-tie, generator start assist, seamless switchover |
| Monitoring / app integration | Built in | Wi-Fi via EG4 cloud dashboard and mobile app |
| Solar panels | Add separately | 40–48× 500W panels recommended; verify string Voc stays below 500V |
| Battery bank | Add separately | EG4 LifePower4 or PowerPro 48V batteries; target 76–80 kWh |
| AC disconnect / breaker panel | Add separately | Required for code compliance; consult a licensed electrician |
| Hard-start kits | Strongly recommended | For any PSC-motor AC or well pump — reduces surge demand significantly |
| Backup generator | Strongly recommended | 12–15kW propane or diesel for extended cloudy stretches |
Your full system summary #
- 1Daily energy load: 24,390 Wh raw → 30,500 Wh with 25% efficiency buffer
- 2Peak load: ~7,500W continuous running / ~13,000W surge (≈10s) — one EG4 12000XP handles both, at 63% continuous utilization and within its 15,360W surge rating
- 3Battery bank: 76,250 Wh needed → ~76.8 kWh LiFePO4 at 48V (16× 100Ah EG4 batteries or equivalent)
- 4Solar array: 20,000–24,000W (40–48× 500W panels) — sized to recharge the full battery bank in one sun day while running daytime loads, within the EG4’s 24kW usable / 28kW accepted solar input limits
- 5Backup: 12–15kW generator tied into the EG4’s generator input for extended overcast periods
Ready to size your own system? #
Contact us with your appliances, square footage, and location and we’ll help you build the right system from the ground up.
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