Amp hours vs watt hours is the difference between electric charge and energy. Amp-hours (Ah) describe charge moved over time; watt-hours (Wh) include voltage and describe energy. Convert a battery’s nominal label with Wh ≈ nominal volts × Ah. A 100Ah label cannot be compared across 12V, 24V, and 48V batteries until voltage is included—and neither Ah nor Wh proves current capability.
Three Questions Hide Behind One Battery Label
Battery shopping becomes clearer when charge, energy, and power are kept separate.
How much charge?
Amp-hours connect current with time. Under simplified conditions, 10A for 5 hours represents 50Ah. Voltage is not contained in the Ah number.
How much energy?
Watt-hours connect power with time. A 100W load for 5 hours uses 500Wh. Battery voltage is part of converting Ah to Wh.
How much power now?
Watts describe a rate. A short high-power load can use little total Wh but still exceed a BMS, inverter, terminal, cable, or fuse limit.
How much current now?
Amps describe current at that moment. For a given power, current changes with voltage and conversion losses.
NIST’s unit tables treat ampere-hour and watt-hour as different physical quantities. U.S. Department of Energy terminology describes a watt as a rate of energy transfer and a watt-hour as energy used over time. Those definitions explain why “100Ah is 1,200Wh” is incomplete without a voltage and why watts and watt-hours cannot be used interchangeably.
Scale prefixes do not change the quantity: 1,000mAh equals 1Ah, while 1,000Wh equals 1kWh. Convert the prefix first, then compare like units at a named voltage.
The “hours” do not mean guaranteed runtime
One amp-hour can be one amp for one hour in unit arithmetic, but a 100Ah battery does not promise every combination of current and time. Capacity is measured under stated conditions. BMS cutoff, discharge rate, temperature, voltage limits, state of charge, battery condition, wiring, and the connected device can change what is available.
Likewise, 1,280Wh nominal does not promise 1,280Wh delivered to an AC appliance. A reserve, low-voltage shutdown, inverter loss, idle draw, and other loads sit between the label and runtime.
Convert Through Nominal Voltage
Use the nominal voltage stated in the exact data sheet. Do not use a random live meter reading during charge or discharge as the capacity-conversion voltage.
The reverse conversion is Ah ≈ Wh ÷ nominal volts. This can translate a bank-sizing result into an Ah target at a selected system voltage, but only after that voltage is chosen. “I need 200Ah” is not a complete system target until the voltage is named.
For energy used by a device, Wh = W × hours. If the device is specified in DC amps and its voltage is known, approximate watts with W = V × A. For AC loads, measure watts or watt-hours on the appropriate side of the inverter and account for its exact behavior.
Nominal voltage is a label convention, not a fixed terminal reading
A “12V” LiFePO4 battery may publish 12.8V nominally. Terminal voltage changes with charge state, current, temperature, and system behavior. Using 12.8V × 100Ah yields 1,280Wh nominal for a product documented that way; using a temporary 14.4V charging reading would incorrectly turn the same label into 1,440Wh.
The product’s published Wh value is preferable when it is unambiguous and matches the exact variant. If your arithmetic differs, check nominal voltage, capacity test conditions, rounding, model identity, and whether the listing mixed variants.
Compare 100Ah Batteries Without Losing the Voltage
These are hypothetical label translations that use clear nominal values.
12.8V × 100Ah = 1,280Wh nominal
This is the common arithmetic for an exact battery documented at 12.8V nominal—not a promise for every product marketed as “12V.”
25.6V × 100Ah = 2,560Wh nominal
The Ah label stayed 100, but nominal energy doubled because nominal voltage doubled.
12.8V × 200Ah = 2,560Wh nominal
This has similar nominal energy to the 25.6V 100Ah example, but it belongs to a different voltage/current architecture.
Victron’s current Lithium SuperPack NG technical table provides a real example of this relationship across exact 12.8V, 25.6V, and 51.2V product variants. The table is useful because it publishes nominal voltage, Ah, and Wh together. Its other limits still apply only to those exact models.
| Hypothetical label | Nominal energy | Same as | Still unknown |
|---|---|---|---|
| 12.8V 100Ah | 1,280Wh | One 12.8V/100Ah energy unit | Usable Wh, current limits, cutoff, losses |
| 25.6V 100Ah | 2,560Wh | Twice the first example’s energy | Series/BMS permission, 24V equipment fit |
| 12.8V 200Ah | 2,560Wh | Similar nominal Wh to 25.6V/100Ah | 12V current path and exact parallel design |
| 51.2V 100Ah | 5,120Wh | Four times the first example’s energy | 48V equipment, BMS, current, installation rules |
Wh makes cross-voltage energy comparison clearer, but it does not make the batteries interchangeable. A 25.6V battery cannot replace a 12.8V battery in a 12V RV because the Wh total looks attractive. Chargers, inverters, controllers, direct DC loads, protection, communications, and service procedures must match the voltage architecture.
Series and parallel reorganize the labels. Two identical 12.8V 100Ah batteries in series are approximately 25.6V 100Ah and 2,560Wh. Two in parallel are approximately 12.8V 200Ah and 2,560Wh. The exact battery must permit the topology; read the series vs parallel guide before treating this arithmetic as a connection instruction.
Turn Watt-Hours into Runtime Carefully
The first planning step is:
runtime hours ≈ available Wh ÷ average load W
“Available” must be modeled from the exact starting state, chosen reserve, cutoff, temperature, condition, conversion loss, and parasitic draw. “Average load” must reflect duty cycle rather than only nameplate maximum.
A hypothetical 1,280Wh nominal battery with a 90% usable allowance contains 1,152Wh in that model. If an AC path is modeled at 90% efficiency, about 1,037Wh reaches the load before inverter idle draw and other system loads. A steady hypothetical 100W device then estimates to roughly 10.37 hours.
That arithmetic is not a test result. Use the 100Ah lithium battery runtime guide and estimator to expose load cycling, parasitic draw, current, and cutoff. A refrigerator, pump, furnace, or compressor needs a time-based energy log.
Solar input belongs on the other side of the energy ledger. If the loads use 800Wh in a day and measured battery-side solar charging restores 500Wh, net battery depletion is about 300Wh for that interval. Panel watts alone cannot be subtracted from battery Wh without time and actual delivered energy.
Neither Ah nor Wh Tells You “Can It Run This?”
Capacity labels can distract from the instantaneous current path. Two batteries with the same 1,280Wh may have different documented continuous current, time-limited surge, low-voltage behavior, terminal design, temperature range, and allowed bank configuration.
A 25W communications load can fit the battery’s current envelope but consume substantial Wh across a day. Idle draw and duty cycle dominate the duration estimate.
A 1,500W appliance might consume modest Wh in five minutes but demand battery current that exceeds a BMS, cable, fuse, connection, or inverter boundary.
A 100Ah 24V-class battery stores roughly twice the nominal Wh of a 100Ah 12V-class battery, but it requires a compatible 24V system.
A 12.8V/200Ah bank and a 25.6V/100Ah bank can show similar nominal energy while operating at very different current for the same power.
Estimate DC current for a power demand with A ≈ W ÷ V, then include conversion loss and voltage under load. At 1,000W, ideal current is about 78A at 12.8V or 39A at 25.6V. Real current can be higher after losses. Compare it with every exact continuous and surge limit along the path.
Do not confuse C-rate with capacity. A 1C current equals the capacity number in amps—100A for 100Ah—but a product is not automatically rated for 1C charge or discharge. Use its published amperes and time limits.
Rewrite the Label Before You Compare
For every shortlisted battery or bank, create a four-part label and list the unresolved boundaries.
- Nominal voltage: the exact documented V used for system compatibility and energy conversion.
- Capacity: Ah plus the manufacturer’s stated test conditions.
- Nominal energy: published Wh, or V × Ah with the arithmetic shown.
- Current envelope: recommended/maximum continuous charge and discharge current plus every time-limited surge.
- Usable-energy controls: starting state, planned reserve, BMS/inverter cutoff, temperature, conversion loss, and parasitic draw.
- Configuration rules: exact series/parallel limits, matching requirements, charger, inverter, controller, protection, and monitoring compatibility.
Your next action is to take one battery label you are considering and rewrite it as: nominal volts + Ah + nominal Wh + continuous/time-limited current. If any field is missing or belongs to a different variant, the product is not ready for a meaningful energy or runtime comparison.

Leave a Reply