Days of Autonomy Calculator:
Partial Sun Credit, Generator Runtime, Per-Load Timeline
The only days-of-autonomy calculator with chemistry-specific DoD, temperature derating, cloudy-day partial sun credit, generator runtime cross-check, and a per-appliance breakdown showing exactly which load drains your bank fastest.
⚡ Calculate Your Autonomy
☀ Your Autonomy Timeline
Select your battery chemistry, enter your bank size, choose your loads, and add any recharge credits. Hit Calculate to see your full autonomy timeline with depletion checkpoints and per-load breakdown.
What Days of Autonomy Actually Means in Practice
Days of autonomy is the number of days your battery bank can power your loads without any recharging — no solar production, no generator, no grid connection. It is the answer to the most critical question in off-grid power planning: how long can I survive a stretch of zero-production weather?
The straightforward formula is usable battery capacity divided by daily load. But “usable battery capacity” is where most online calculators fall apart. They take your rated battery size and divide by your load without adjusting for the chemistry-specific depth of discharge (LFP can use 90% of rated capacity; lead-acid should only use 50%), the temperature-related capacity loss (a 200Ah AGM battery stored in a 25-degree-Fahrenheit garage delivers about 110Ah, not 100Ah at 50% DoD), or the partial solar production that occurs even on cloudy days. These three factors together can make a 2x or 3x difference in your actual real-world autonomy versus the theoretical calculation.
The Partial Sun Factor Competitors Ignore
No solar system truly has zero production on cloudy days. A clear day might produce 100% of rated output. A thin overcast might produce 60-80%. A heavy overcast might produce 10-25%. A day of continuous heavy rain might produce 5-10%. For most US locations, the probability of multiple consecutive days of total zero production is very low — even major storm systems typically break and allow some production. If your system produces even 0.5 kWh per day during a cloudy stretch, and your net load is 2 kWh per day, your effective autonomy more than doubles because the drain is only 1.5 kWh per day instead of 2. Our calculator lets you enter this partial sun credit so your autonomy estimate reflects realistic cloudy-day conditions rather than a theoretical worst case.
How the Days of Autonomy Calculator Works
Enter your battery chemistry, bank size (in Ah at a voltage, or directly in kWh), storage temperature, and daily loads. Optionally add partial sun recharge credit and generator hours. The calculator applies the chemistry-specific DoD, temperature derating, and subtracts all daily credits to find your true net drain. It then divides your usable bank capacity by this net drain to give you your real-world autonomy in days and hours. The per-load breakdown table shows you exactly which appliance consumes the most of your autonomy, helping you decide which loads to shed first if clouds persist longer than expected.
Three Real Autonomy Calculation Examples
Weekend Cabin — Vermont
Dave has a hunting cabin in Vermont with a 300Ah AGM bank at 12V (3.6 kWh rated) and a 400W solar array. During hunting season in November, the batteries live in an unheated outbuilding where temps drop to 20 degrees F. He runs an LED lighting system, a small 12V cooler, and his phone charger.
| Input | Value | Notes |
|---|---|---|
| Battery bank | 300Ah AGM @ 12V | 3.6 kWh rated |
| DoD | 50% | AGM chemistry limit |
| Storage temp | 20°F | Unheated building |
| Temp derating | ~50% | AGM loses ~50% at 20F |
| Usable capacity | 0.9 kWh | 3.6 x 0.50 x 0.50 |
| Daily load | 0.65 kWh | Lights + cooler + phone |
| Partial sun (Nov) | 0.2 kWh/day | Short overcast days |
Full-Time Off-Grid Home — Oregon Coast
The Johnson family lives off-grid year-round on the Oregon Coast. They have a 400Ah LFP bank at 24V (9.6 kWh rated) and a 2.0 kW solar array. January on the Oregon Coast means heavy clouds — their array produces about 0.8 kWh per day on average during winter. They have a 2,000W Honda EU2200i generator for backup.
| Input | Value | Notes |
|---|---|---|
| Battery bank | 400Ah LFP @ 24V | 9.6 kWh rated |
| DoD | 90% | LFP chemistry |
| Storage temp | 55°F | Climate-controlled room |
| Usable capacity | 8.4 kWh | 9.6 x 0.90 x 0.97 |
| Daily load | 5.2 kWh | Full household, no AC |
| Partial sun (Jan) | 0.8 kWh/day | Heavy coastal overcast |
RV Boondocking — Southwest Desert
Maria boondocks in her Class C for 2-3 weeks at a time near Quartzsite, Arizona. She has 200Ah LFP at 12V (2.4 kWh rated) and a 600W rooftop array. Arizona desert in January has 5.5 peak sun hours and even on overcast days she gets 0.5-1.0 kWh production. She wants to understand her theoretical worst-case autonomy.
| Input | Value | Notes |
|---|---|---|
| Battery bank | 200Ah LFP @ 12V | 2.4 kWh rated |
| DoD | 90% | LFP chemistry |
| Storage temp | 75°F | Desert climate, no derating |
| Usable capacity | 2.16 kWh | 2.4 x 0.90 |
| Daily load | 1.8 kWh | Fridge, lights, laptop, phone |
| Partial sun credit | 0.5 kWh/day | Conservative cloudy-day min |
Expert Tips for Extending Your Off-Grid Autonomy
Know Your 50% Depletion Point — Act Before Then
The most important output from this calculator is not your maximum autonomy days — it is the day when your battery bank hits 50% depletion. That is your action trigger. For LFP, 50% depletion means you still have 50% of your usable capacity remaining, giving you time to run the generator, drive somewhere with shore power, or aggressively reduce loads before you are in crisis mode. For lead-acid chemistries, 50% depletion of usable capacity means you are at the DoD limit and must stop discharging immediately to prevent damage. Build a mental model: every morning, check your battery monitor. If you are below the action threshold, take action before the next night of drain depletes you further.
Partial Sun Production Is More Reliable Than You Think
The biggest mistake in autonomy planning is modeling cloudy days as zero-production days. For most of the continental US, a completely cloudy day with zero measurable solar production is rare — even a solidly overcast sky lets through 10-25% of normal irradiance. A 600W array on a heavy overcast day in the Pacific Northwest still produces 60-150 watts continuously — that is 0.6-1.5 kWh over 10 hours of daylight. This production does not fill your battery but it dramatically slows the drain. Model your worst-case cloud scenario (not absolute zero) and your autonomy estimates will be more realistic and less anxiety-inducing.
The Per-Load Breakdown Tells You Exactly What to Shed
Use the per-load autonomy breakdown in this calculator to build your load-shedding protocol before you ever need it. If your fridge alone drains the bank in 2 days, and your laptop alone drains it in 6 days, the protocol is obvious: the fridge is the first thing to address in a crisis. Options include switching to a cooler with ice, pre-cooling food before clouds hit, or upgrading to a more efficient 12V compressor fridge. Having a written load-shedding plan — Tier 1 (cut non-essentials), Tier 2 (cut comfort loads), Tier 3 (emergency fridge shutdown) — turns a cloudy week from a crisis into a manageable situation you have already planned for.
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Legal Disclaimer and Editorial Transparency
The Days of Autonomy Calculator on USCalculators.com provides estimates for educational and planning purposes only. Actual battery autonomy depends on your specific battery condition and age, actual appliance consumption versus nameplate wattage, real-world temperature conditions, partial solar production variability, and usage patterns. Temperature derating values are based on published battery chemistry data and may vary by specific product and manufacturer.
Battery systems above certain watt-hour thresholds may require permits under NEC Article 706 and local codes. Consult a licensed electrician for any permanent battery installation. Generator operation indoors is fatal — never run a gasoline or propane generator inside a building, garage, or enclosed space. See CDC.gov for generator safety guidelines.
Editorial policy: USCalculators.com is an independent educational resource with no affiliate relationships with battery manufacturers, solar installers, or generator brands.