Off-Grid + Battery-Backed Solar Systems
Why this matters
Off-grid + battery-backed solar systems are the segment most affected by the 2023 California NEM 3.0 + utility rate hikes nationally. Grid-tied solar without battery has poor ROI in many markets now; solar PLUS battery has dramatically better economics. Customer interest has shifted from "solar to save money" to "solar + battery to take control." Contractors who understand the system design + integration capture the high-margin work + retain customers post-install through service contracts.
Three system architectures
Grid-tied (no battery)
- Solar feeds inverter feeds grid OR home
- No backup during outage (auto-disconnects per UL 1741 anti-islanding)
- Cheapest installation
- ROI depends entirely on net metering rules
Grid-tied + battery (the common modern install)
- Solar feeds inverter; battery stores excess
- During outage, battery + solar power critical loads (OR whole home)
- Premium pricing; growing fastest in 2024 - 2026
- ROI improves when net metering reduces (TOU + peak rate avoidance)
Off-grid (no utility connection)
- Solar + battery + sometimes generator
- Common for: remote cabins, RV / boat, intentional grid-disconnect
- Requires careful sizing + capacity planning
- 100% customer self-reliance
Hybrid systems can switch between modes (grid-tied normal + island during outage).
Hybrid inverter selection (key system component)
Modern inverters that combine grid-tied + battery + island operation:
- SolarEdge StorEdge - wide ecosystem; SolarEdge optimizers
- Enphase IQ8 + IQ Battery - microinverter approach; battery integration
- Sol-Ark 12K + 15K - popular for off-grid + hybrid
- Schneider Electric XW Pro - proven off-grid backbone
- Outback Power FXR - off-grid specialty
- Tesla Powerwall + integrated inverter - closed ecosystem; specific design
Match inverter to the system architecture + the customer's future expansion plans.
Battery selection
Tier 1 (lithium iron phosphate - LFP)
- Safest chemistry; long cycle life (3,000 - 6,000 cycles)
- Lower energy density (larger physical size for same kWh)
- Brands: BYD, Pylontech, EG4, SimpliPhi, Discover AES
- Most off-grid + many residential
Tier 1 (lithium nickel manganese cobalt - NMC)
- Higher energy density (smaller physical size)
- Shorter cycle life (1,500 - 3,000 cycles)
- Brands: Tesla Powerwall (some chemistry mix), older Enphase IQ Battery 5
- Faster fading; better for daily-cycling use cases
Tier 2 (lead-acid)
- Legacy off-grid; less common 2025+
- Short cycle life (500 - 1,500 cycles); regular maintenance
- Lowest upfront cost
- Brands: Trojan, Rolls, Crown
- Niche: budget off-grid, customer who maintains carefully
Sizing for off-grid
Step 1: Daily load (kWh per day)
- Inventory every device + duty cycle
- Sum daily kWh
- Add 25 - 50% margin for actual usage variability
Step 2: Battery sizing
- Days of autonomy (no solar; cloudy days): 2 - 4 typical residential
- Battery sized to daily load × days of autonomy
- Discharge depth: lithium 80 - 90%, lead-acid 50%
Example: 30 kWh/day × 3 days autonomy / 80% discharge = ~115 kWh battery bank.
That's a substantial bank - 6 - 10 Powerwall-equivalent units. Off-grid is HEAVY in battery cost.
Step 3: Solar array sizing
- Daily kWh + 30 - 50% buffer (cloudy days, dust, seasonal)
- Divided by peak sun hours for location
- Off-grid typically 1.5 - 2x larger array than grid-tied for same load
Step 4: Generator backup
- Most off-grid systems include propane / diesel generator for multi-day overcast
- 8 - 14 kW typical residential off-grid backup
- Automatic transfer to generator when battery low
Sizing for grid-tied + battery (the common modern install)
Critical loads (the affordable approach)
- Battery sized for refrigerator + lights + sump + internet + medical equipment
- 5 - 15 kWh battery
- Powers 1 - 3 days during outage
Whole-home (the premium approach)
- Battery sized to power entire home for limited time during outage
- 20 - 40+ kWh battery
- Powers ~half-day to 2 days
- Requires whole-home transfer switch + larger inverter
Battery + EV (the integrated approach)
- See V2H article - bidirectional EV adds 60 - 130 kWh of backup capacity at low marginal cost
- Becoming the dominant pattern for newer residential
System protection + safety
Anti-islanding (UL 1741)
- Grid-tied inverter MUST disconnect from grid during utility outage
- Protects utility lineworkers
- Inverter "islanding" capability allows local operation but only when grid is confirmed disconnected
Battery management system (BMS)
- Monitors cell-level temperature + voltage + current
- Prevents thermal runaway + over-discharge + over-charge
- All UL-listed batteries include BMS
NEC 706 (Energy Storage Systems)
- Battery installation requirements
- Disconnects, signage, location restrictions
- See UL 9540A article for compliance details
Critical-loads panel
- Subpanel separates "critical" circuits from non-critical
- During outage, only critical loads powered
- Lights + outlets + select appliances; not whole home
Common system designs
Small backup (1 - 2 kW)
- Single battery + small inverter
- Powers internet + a few lights + phone charging
- For very budget-conscious
Medium backup (3 - 7 kW)
- 1 - 2 Powerwall + inverter integration
- Critical loads for 12 - 36 hours
- Most common 2025 install
Large backup (10 - 30 kWh)
- 2 - 4 batteries + larger inverter
- Whole-home for limited periods
- Customer with strong outage history
Off-grid (50 - 200 kWh)
- Multiple battery banks + sizable solar array + generator
- Total self-reliance
- Customer specifically wanting off-grid
Maintenance + service
- Annual inspection by certified installer
- Software updates via cloud
- Battery state-of-health tracking
- Generator service (if equipped)
- Periodic load test
References
- NEC 690 + 705 + 706 (Solar + ESS)
- IEEE 1547 (grid interconnection)
- UL 9540 + 9540A (energy storage testing)
- IRA solar + battery tax credits
- Manufacturer install manuals (Tesla, Enphase, SolarEdge, Sol-Ark)
- Manuall internal: Residential Solar Design + Sizing, Bidirectional EV Charging (V2H + V2G)