Tecnobosque Wildfire Knowledge Graph · Emergency Power
Reference Concept · v1.0Definition → relationship → calculation → evidence context
Battery energy capacity is the amount of electrical energy a battery can store or deliver under stated conditions, commonly expressed in watt-hours (Wh) or kilowatt-hours (kWh).
What is battery capacity?
A battery stores energy. When a device draws a steady electrical load, ideal runtime is energy divided by power. Real systems deliver less than nominal energy because of inverter conversion, standby consumption, battery protection limits and selected reserve.
For emergency planning, the useful question is not only “How big is the battery?” but “Which loads must operate, for how long, at what realistic power?”
Why it matters
During wildfire smoke or outages, essential loads such as air cleaners, communications and lighting need a realistic energy budget rather than a headline battery rating.
Capacity tells you how much energy is available; power tells you how fast equipment draws it. Runtime depends on both, plus conversion losses and the usable reserve.
E_Wh ≈ V × AhNominal battery energy can be approximated from voltage and amp-hour capacity. Usable AC energy is lower after depth-of-discharge limits, reserve and conversion losses.
Stored electrical energy under stated rating conditions.
Electrical potential used in a simple V×Ah estimate.
Charge capacity rating at a stated voltage/test condition.
Electrical power demanded by connected equipment.
Fraction of stored energy delivered usefully after conversion losses.
Simple runtime budget
A 1,024 Wh power station is planned with 85% conversion/use efficiency and a 15% retained reserve for a 100 W load.
Usable energy = 1,024 × 0.85 × 0.85 ≈ 740 WhRuntime ≈ 740 Wh ÷ 100 WRuntime ≈ 7.4 hActual runtime depends on load variation, temperature, battery management and standby losses.
What controls or changes this quantity?
Battery management and chosen reserve determine how much nominal capacity is actually used.
AC loads incur conversion loss from battery DC to AC.
Cycling devices and startup surges differ from a constant-load assumption.
Battery performance can differ from nominal ratings as conditions and cell health change.
Engineering context
How much energy is stored.
How much load the system can support continuously.
Short-duration peak capability for starting loads.
Usable energy divided by average load under the stated assumptions.
How to interpret it correctly
- Use Wh/kWh for energy and W/kW for power.
- Check both energy capacity and inverter power limits.
- Budget for conversion losses and reserve instead of assuming 100% nominal capacity is available.
- Build an essential-load list before selecting a power station.
Use the calculator as a transparent technical aid and keep its assumptions explicit.Open Portable Power Runtime Calculator →
Why it matters in wildfire analysis
A high-CADR air purifier can be an important smoke-control load but may need to run for many hours. Connecting CADR sizing to battery runtime prevents the air-cleaning and backup-power plans from contradicting each other.
Tecnobosque treats battery capacity as one node in a resilience chain rather than as a product-shopping specification.
Limitations and boundaries
- Manufacturer capacity ratings use defined test conditions that may differ from real use.
- Runtime estimates are sensitive to actual load and conversion efficiency.
- Battery systems require appropriate electrical and fire-safety practices beyond a web calculator.
Battery Capacity FAQ
What is the difference between Wh and W?
Wh is energy capacity; W is instantaneous power.
How do I estimate battery runtime?
Divide usable energy in Wh by average load in W, after accounting for efficiency and reserve.
Is a 1,000 Wh battery always able to supply 1,000 W?
No. Energy capacity and inverter power rating are separate limits.
Why is usable capacity lower than nominal?
Reserve settings, battery protection and conversion losses reduce energy available to the load.