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Professional Engineering Suite•NEC & IEC Compliant

Solar Battery Calculator & Sizing Suite

Calculate the exact battery storage capacity (Wh & Ah), minimum inverter rating, and solar array required to power your off-grid home, RV, campervan, or marine electrical system.

1. Electrical Loads & Energy Demand

Select appliances or enter daily Wh
Step 1 of 2

Load Sizing Method

Select appliances from the 1-click library, add custom equipment, or enter total daily Wh directly.

55 W

12V RV Compressor Fridge

High-efficiency 65L DC compressor cooler (Dometic / Iceco)

Est. Daily~462 Wh/day
0
150 W

Residential Fridge & Freezer

Household Energy-Star 120V AC kitchen refrigerator

Est. Daily~1440 Wh/day
0
30 W

Starlink Mini Satellite

Portable DC satellite internet dish terminal

Est. Daily~240 Wh/day
0
75 W

Starlink Gen 3 Standard

High-speed AC residential/RV motorized satellite dish

Est. Daily~600 Wh/day
0
65 W

Laptop USB-C Charging

MacBook or PC workstation rapid USB-PD charger

Est. Daily~260 Wh/day
0
12 W

LTE / 5G Cellular Router

Always-on 12V mobile broadband WiFi internet modem

Est. Daily~288 Wh/day
0
20 W

Smartphone Fast Charger

Daily mobile smartphone & tablet fast recharging

Est. Daily~40 Wh/day
0
25 W

Diesel Parking Heater

12V electric glow pin & combustion air blower fan

Est. Daily~200 Wh/day
0
24 W

RV Roof Vent Exhaust Fan

10-speed 12V motorized ceiling ventilation fan

Est. Daily~240 Wh/day
0
850 W

12,000 BTU Mini-Split AC

High-efficiency SEER 22+ inverter heat pump cooling

Est. Daily~2550 Wh/day
0
1500 W

Induction Cooktop (Single)

High-power precision electric cooking burner plate

Est. Daily~750 Wh/day
0
1250 W

Compact Microwave (900W)

High-surge AC kitchen appliance for meal reheating

Est. Daily~313 Wh/day
0
1000 W

Drip Coffee Maker / Espresso

Morning hot beverage electric brewing heating element

Est. Daily~200 Wh/day
0
60 W

12V Fresh Water Pump

On-demand 3 GPM pressurized plumbing diaphragm pump

Est. Daily~30 Wh/day
0
30 W

Interior LED Living Lights

Low-draw ambient living space ceiling puck & strip LEDs

Est. Daily~180 Wh/day
0
60 W

43" LED Smart Television

Streaming media player & television entertainment display

Est. Daily~180 Wh/day
0
35 W

CPAP Machine (Standard)

Nighttime respiratory therapy without heated tube

Est. Daily~280 Wh/day
0
85 W

CPAP Machine (Heated Tube)

Active humidification chamber with heated breathing hose

Est. Daily~680 Wh/day
0
18 W

Inverter Standby Idle Draw

Internal tare consumption of active pure sine wave inverter

Est. Daily~432 Wh/day
0

Add Custom Appliance / Equipment

Bespoke Loads
Active Load Summary
0 appliances selected
Peak Continuous Draw0 W
Daily Energy Total0 Wh/day

2. Battery Chemistry & Architecture

Step 2 of 2
2 Days
1 Day (Sunny)2 Days (Standard)5 Days (Stormy)

Required Storage Capacity

Calculated Battery Bank
Total Sized
1.89kWh(1,888 Wh)
Gross capacity accounting for 85% DoD and inverter efficiency.
Battery Bank Amp-Hours:157 Ah @ 12V
Usable Stored Energy:1.60 kWh
Recommended Bank Architecture
2 × 12V 100Ah Batteries wired 1 in series, 2 in parallel (1S2P)
Min. Inverter Size1,000 WSurge: 2,000 W
Min. Solar Array250 WTo replenish in 1 day
Engineering Advisory:

12V is well-suited for your current continuous load wattage.

Calculate Cable Gauge for this System→
Core Engineering Principles

The Fundamental Physics of Solar Battery Sizing: Watt-Hours vs. Amp-Hours

Designing a dependable off-grid solar energy storage system requires rigorous mathematical sizing rather than guesswork. Whether you are engineering an electrical system for an off-grid homestead, a high-latitude cabin, a marine vessel, or an expedition campervan, your battery bank is the foundational heart of your microgrid. A solar battery bank must not only store sufficient energy to carry your lifestyle through consecutive overcast days, but it must also withstand inductive startup surges, maintain operational voltage under heavy continuous discharge, and replenish rapidly once sunlight returns.

Our Solar Battery Calculator implements professional electrical engineering equations compliant with the National Electrical Code (NEC Article 690) to eliminate undersizing risks, prevent premature electrochemical failure, and maximize your system's lifecycle return on investment.

1. Total Energy Storage Formula (Gross Watt-Hours)

E_gross = (E_daily × N_autonomy) / (DoD × η_inverter × η_temp)
  • E_daily (Daily Load): Sum of (Watts × Operating Hours) for all active AC and DC appliances.
  • N_autonomy (Days of Autonomy): Number of consecutive days your system operates without solar generation (2–3 days standard).
  • DoD (Depth of Discharge): Maximum usable percentage before cell degradation (0.85 for LiFePO4, 0.50 for AGM Lead-Acid).
  • η_inverter (Inverter Efficiency): Thermal conversion efficiency (0.90 to 0.94 for modern pure sine wave units).
  • η_temp (Temperature Factor): Electrochemical derate coefficient based on minimum installation ambient temperature.

2. Battery Bank Amp-Hour Capacity (Ah)

Capacity (Ah) = E_gross (Wh) / System_Voltage (V)

A common misconception among beginner solar builders is sizing battery banks exclusively by Amp-hours (Ah). Amp-hours measure electrical charge, but Watt-hours (Wh) measure actual electrical energy. Because electrical power is the product of voltage and current (P = V × I), a 100Ah battery at 12 Volts provides only 1,200 Watt-hours of total energy (12V × 100Ah = 1,200Wh), whereas a 100Ah battery at 48 Volts provides 4,800 Watt-hours (48V × 100Ah = 4,800Wh)—four times the functional energy storage. Dividing gross Watt-hours by your DC bus voltage yields the exact battery bank capacity required.

Electrical Efficiency

System Voltage Architecture: When to Choose 12V, 24V, or 48V

Selecting the correct direct-current (DC) system voltage is one of the most critical decisions in off-grid power architecture. According to Ohm's Law and Joule's Law of electric heating (P_loss = I² × R), doubling system voltage cuts amperage in half for the exact same wattage load, which in turn reduces resistive wire heating by 75%.

System VoltageAmperage @ 2,400W LoadRequired Conductor GaugeResistive Heat LossRecommended Application
12 Volts DC200 Amps4/0 AWG CopperHigh (I²R = 40,000 × R)Vans, Small RVs, Overland Kits (<1,500W)
24 Volts DC100 Amps2 AWG CopperModerate (I²R = 10,000 × R)Medium Cabins, Large RVs (1,500W–3,000W)
48 Volts DC50 Amps6 AWG CopperMinimal (I²R = 2,500 × R)Off-Grid Homes, Mini-Splits, EV Charging (>3,000W)
12-Volt ArchitectureRecommended strictly for compact mobile systems (van conversions, small travel trailers, overland vehicles) with continuous inverter loads under 1,500 Watts. At 12V, high wattage creates extreme amperage that requires expensive, inflexible 4/0 welding cables and heavy Class T fuses.
24-Volt ArchitectureThe sweet spot for mid-sized off-grid cabins, medium RVs, and workshop setups operating loads between 1,500W and 3,000W. Delivers a 50% amperage reduction over 12V, enabling lighter, more pliable copper cable runs.
48-Volt ArchitectureThe universal standard for whole-home residential microgrids, heat pumps, well pumps, and continuous loads exceeding 3,000 Watts. Minimizes copper expenditure, maximizes inverter efficiency, and interfaces seamlessly with high-voltage solar charge controllers.
Electrochemical Comparison

Electrochemical Comparison: LiFePO4 Lithium vs. AGM Lead-Acid

The choice between Lithium Iron Phosphate (LiFePO4) and Absorbed Glass Mat (AGM) sealed lead-acid fundamentally dictates usable capacity, weight distribution, and 10-year levelized cost of storage.

Chemistry TypeUsable DoDTypical Cycle LifeEnergy DensityPeukert LossRound-Trip Efficiency10-Year Amortized Cost
LiFePO4 (Lithium)85% – 90%3,500 – 6,000 Cycles100–120 Wh/kg (Light)Negligible (k ≈ 1.02)96% – 98%$0.06 – $0.09 / kWh
AGM Sealed Lead-Acid50% Usable400 – 600 Cycles30–40 Wh/kg (Heavy)Moderate (k ≈ 1.20)80% – 85%$0.22 – $0.28 / kWh
Gel Deep Cycle50% Usable500 – 700 Cycles30–35 Wh/kgModerate (k ≈ 1.18)80% – 83%$0.24 – $0.30 / kWh
Flooded Lead-Acid50% Usable300 – 500 Cycles25–30 Wh/kgSevere (k ≈ 1.28)70% – 80%$0.26 – $0.35 / kWh

The Hidden Penalty of Peukert's Law in Lead-Acid Batteries

While AGM batteries appear cheaper upfront, they suffer severely from Peukert's Law: as discharge amperage increases, usable capacity drops dramatically. An AGM battery rated for 100Ah at a gentle 20-hour rate (C/20, or 5 Amps) may deliver only 60Ah when powering a high-draw microwave or air conditioner (C/1 rate). In contrast, LiFePO4 lithium delivers virtually 100% of its rated capacity regardless of whether it is discharged over 20 hours or 1 hour, making lithium the definitive engineering standard for modern solar storage.

Real-World Benchmark

Step-by-Step Worked Sizing Walkthrough: 48V Off-Grid Tiny Home

To demonstrate the calculation engine in practice, consider an energy-efficient off-grid tiny home with the following daily electrical audit:

• Full-Size DC Compressor Refrigerator: 50W running 8 hrs/day = 400 Wh
• Starlink Satellite Internet Terminal: 45W running 12 hrs/day = 540 Wh
• Mini-Split Inverter Heat Pump: 450W average for 6 hrs/day = 2,700 Wh
• Induction Cooktop: 1,400W running 0.75 hrs/day = 1,050 Wh
• LED Lighting & Ceiling Ventilation: 60W for 6 hrs/day = 360 Wh
• Electronics, Laptops & Mobile Charging = 350 Wh
• Inverter Standby Parasitic Consumption: 25W × 24 hrs = 600 Wh
Total Net Daily Consumption (E_daily) = 6,000 Wh (6.0 kWh/day)
Step 1: Autonomy & Inverter Losses

Designing for 2 Days of Autonomy using LiFePO4 batteries (85% DoD) and a pure sine wave inverter (90% efficiency):

E_gross = (6,000 × 2) / (0.85 × 0.90) = 15,686 Wh (15.7 kWh)
Step 2: 48V Battery Bank Capacity

Dividing gross storage by the nominal 48V DC bus voltage:

Capacity = 15,686 Wh / 48V = 326.8 Ah
Recommended: Three 48V 100Ah server-rack batteries in parallel (15.36 kWh).
Step 3: Continuous & Surge Inverter

Simultaneous load: Cooktop (1,400W) + Fridge (150W surge) + Mini-Split (450W) + Lights (100W) = 2,100W continuous load.

Rating = 2,100W × 1.25 = 2,625W → Install 3,000W Pure Sine (6,000W Surge)
Step 4: Solar Array Replenishment

Replenishing 6,000 Wh in 4.5 Peak Sun Hours (PSH) with an MPPT controller (95% eff.) and 0.80 derating:

Array = 6,000 / (4.5 × 0.95 × 0.80) = 1,754 Watts → Five 400W Panels (2.0 kW)
Safety & Compliance

Environmental Factors: Temperature Cutoffs & NEC Safety Standards

• Cold Weather Lithium Charging Hazards

While LiFePO4 batteries can safely discharge down to -20°C (-4°F), lithium batteries must NEVER be charged below 0°C (32°F). Forcing charge current into frozen lithium cells causes permanent metallic lithium plating on the anode, resulting in micro-short circuits, severe capacity degradation, and potential thermal runaway.

Always verify that your lithium battery bank includes an integrated Battery Management System (BMS) with Low-Temperature Charging Protection or self-heating internal thermal film pads.

• Overcurrent Protection (NEC Article 690.8 & 705)

Lithium battery banks possess extremely low internal resistance and can deliver instantaneous short-circuit fault currents exceeding 5,000 to 10,000 Amps. Standard automotive or ANL fuses lack adequate Amperage Interrupting Capacity (AIC) and can physically arc-weld shut during a short circuit.

The National Electrical Code mandates installing a Class T fuse (rated for 20,000 AIC) directly on the positive battery conductor within 18 inches of the terminal to guarantee instantaneous circuit clearance in fault scenarios.

Frequently Asked Questions

Master Solar Sizing FAQ

Direct engineering answers to off-grid battery bank calculations, voltage choices, and inverter pairing.

01How do I calculate what size solar battery bank I need?

To size a solar battery bank accurately: (1) Calculate your total daily consumption in Watt-hours (Wh); (2) Multiply by your desired Days of Autonomy (typically 2 days to account for cloudy weather); (3) Divide by your battery's safe Depth of Discharge (DoD) (85% for LiFePO4, 50% for Lead-Acid); (4) Divide by your inverter efficiency (typically 90%). Finally, divide the total required Wh by your system voltage (12V, 24V, or 48V) to get your required Amp-hour (Ah) capacity.

02Why is LiFePO4 recommended over AGM lead-acid for solar storage?

LiFePO4 (Lithium Iron Phosphate) delivers 3,500 to 6,000 charge cycles at 80–90% Depth of Discharge, compared to only 400 to 600 cycles for AGM lead-acid at 50% DoD. While lithium has a higher initial purchase price, its levelized cost per kilowatt-hour over its 10+ year lifespan is roughly one-third that of lead-acid. Additionally, LiFePO4 weighs 60% less and does not suffer from Peukert capacity loss under high loads.

03When should I choose a 24V or 48V battery bank instead of 12V?

As a rule of electrical engineering: use 12V for systems under 1,500 Watts; use 24V for systems between 1,500W and 3,000W; and use 48V for systems exceeding 3,000 Watts. Increasing system voltage cuts the direct current (Amps) proportionally (I = P / V). Lower amperage allows you to use much thinner, less expensive copper cables, dramatically reduces resistive heat loss, and prevents dangerous voltage drops.

04What is "Days of Autonomy" in solar battery sizing?

Days of Autonomy represents the number of days your off-grid battery bank can power all your appliances with zero solar energy input (such as during continuous rain, heavy snow, or dense overcast). Most off-grid homes and RV builders design for 2 to 3 days of autonomy to prevent draining batteries to empty during winter weather patterns.

05What size inverter do I need for my battery bank?

Your inverter must be sized to handle the maximum combined wattage of all AC appliances running at the same time, plus a 20–25% safety margin. For example, if you run a 1,200W microwave and a 150W refrigerator simultaneously (1,350W peak load), you should install a minimum 2,000W pure sine wave inverter with a 4,000W surge rating for motor startup currents.