Battery Storage with Grid-Tied Solar

Why this matters

Grid-tied solar PV systems normally shut down when the utility power fails (UL 1741 anti-islanding requirement). Customers who want power during outages need an energy storage system (battery). The battery + control electronics integrate with the PV system to provide backup power, time-shift solar production for peak use, OR enable off-grid operation. Storage technology has matured significantly; Tesla Powerwall, LG RESU, Enphase IQ Battery, FranklinWH, and other systems compete in this growing market.

Why solar customers want batteries

Customer driver What the battery does
Outage backup Battery + automatic transfer switch provide power during utility outages
Time-of-use rate savings Battery stores solar production for evening use when rates are higher
Demand charge reduction (commercial) Battery offsets peak demand to reduce demand charges
Off-grid living Battery + larger solar = no utility connection
Grid services (some utilities) Battery participates in utility programs for compensation
Energy independence philosophy Some customers value reducing utility dependence

The customer's primary driver determines the system design.

Battery technologies

Lithium-ion (dominant)

  • Tesla Powerwall, LG RESU, Enphase IQ Battery, etc.
  • High energy density (smaller per kWh)
  • Longer service life (10+ years typical, 25 years possible)
  • Higher upfront cost
  • Less maintenance

Subcategories:

  • NMC (Nickel Manganese Cobalt): high energy density, premium price, examples include Tesla Powerwall
  • LFP (Lithium Iron Phosphate): safer chemistry, slightly lower energy density, growing adoption
  • Solid-state lithium: emerging technology; not yet widely deployed residentially

Lead-acid (legacy)

  • Cheaper upfront cost
  • Lower energy density (larger for same capacity)
  • Shorter service life (5-10 years)
  • Require periodic maintenance (some types)
  • Common in off-grid systems with budget constraints

Most current installations use lithium-ion. Lead-acid is occasionally used in specialized applications.

How the system integrates

The battery + grid + solar interconnection:

[Grid] ←→ [Smart Panel / Inverter] ←→ [Solar PV]
  ↕
  [Battery]
  ↓
  [Home Loads]

Normal operation:

  1. Solar produces; powers home + charges battery
  2. Excess production exports to grid
  3. At night, home draws from grid

Outage operation:

  1. Grid disconnected (anti-islanding)
  2. Battery + solar continue to power home (battery's "islanding mode")
  3. System manages capacity vs. demand
  4. Returns to normal operation when grid restored

Time-of-use optimization:

  1. Battery charges from solar during day
  2. Discharges to home during evening (high-rate hours)
  3. Charges from grid during low-rate hours if depleted
  4. Reduces utility electricity cost

Sizing the battery

The customer's goal determines battery capacity:

Outage backup for critical loads (refrigerator, lights, internet):

  • 5-10 kWh battery
  • Backup for 4-12 hours typical

Whole-home backup (some loads cycled):

  • 13.5-30 kWh (one or more Powerwalls)
  • Backup for 12-24 hours typical
  • Load management to extend duration

Whole-home backup, extended duration:

  • 30+ kWh
  • Backup for multi-day outages
  • Significant capital investment

Off-grid:

  • 30-60+ kWh
  • Designed to ride through cloudy days
  • Larger battery + larger solar PV system

The customer's typical load curve + outage frequency + budget drive the sizing.

Common battery products

Tesla Powerwall

  • 13.5 kWh capacity
  • 5 kW continuous, 7 kW peak
  • LFP chemistry (Powerwall 3)
  • AC-coupled
  • Premium price; well-known brand
  • Tesla's monitoring app

LG RESU

  • Various capacities (10-16 kWh)
  • DC-coupled (integrates closer with the inverter)
  • Higher round-trip efficiency
  • LG monitoring

Enphase IQ Battery

  • 3.36 kWh modular (stackable)
  • Microinverter ecosystem integration
  • Lower per-unit capacity (built in modules)
  • Enphase monitoring

FranklinWH

  • 13.6 kWh capacity
  • Higher continuous output
  • Backup transfer features built-in
  • Emerging brand

Generac PWRcell

  • 9-18 kWh modular
  • DC-coupled with their inverter
  • Familiar brand for generator customers

Each has advantages. Compare based on:

  • Customer's existing solar inverter (compatibility)
  • Capacity needs
  • Brand preference
  • Local installer support
  • Warranty terms

Installation considerations

Location

Location Considerations
Garage Standard; convenient access; temperature stable
Outdoor (wall-mount) Sun + weather exposure; verify rated for outdoor use
Indoor utility room Quiet; temperature-controlled
Outdoor in cold climate Verify cold-weather operation; some require enclosures

Lithium batteries have operating temperature ranges. Outdoor installations in extreme climates may need heated/cooled enclosures.

Electrical considerations

Requirement Detail
Dedicated circuit Battery requires a dedicated AC circuit
Service panel coordination The transfer switch / smart panel integrates with the main panel
Critical load panel (some installations) Separate sub-panel for backup-only loads
Wiring Larger gauge wires for the battery's current capacity

Code compliance

Code Requirement
NEC 706 (Energy Storage Systems) ESS-specific requirements
NEC 690 (Solar PV) Integration with PV system
NEC 705 (Interconnected Power Sources) Source coordination
Local fire code Some areas require fire-rated installation

Backup capabilities

Customer perception management:

Backup capacity Customer experience
Critical loads only (refrigerator, lights, internet) Reduces "outage anxiety" but customer still feels constrained
Whole-home with load management Customer experiences mostly normal life with occasional cycling
Whole-home with full capacity Customer doesn't notice the outage

Set expectations based on the actual capacity. A customer expecting "whole-home" capacity may be disappointed with a 13.5 kWh single-Powerwall installation.

Time-of-use savings

For customers on time-of-use rates:

  1. Battery charges from solar during day (when rates are low or solar provides excess)
  2. Discharges to home during evening peak rates
  3. Daily savings = (peak rate - off-peak rate) × kWh shifted
  4. Annual savings adds up over many days

For customers without time-of-use rates: the financial case is purely outage backup.

Cost framework

Battery storage is one of the larger residential electrical investments:

References

  • NEC 706 (Energy Storage Systems)
  • NEC 690 (Solar PV Systems)
  • NEC 705 (Interconnected Power Sources)
  • UL 9540 (Energy Storage System Safety)
  • IEEE 1547 (Interconnection Standards)
  • IRS Section 25D (federal tax credit)
  • Manufacturer documentation (Tesla, LG, Enphase, FranklinWH, Generac)
  • Manuall internal: Off-Grid and Battery Systems, Residential Solar Install SOP, Inverter Types and Sizing