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Sizing & Buying Guides

Amp-Hours to Watt-Hours and kWh: Battery Math Made Simple

Four lithium batteries wired together in a white boat compartment beside a teak deck

Amp-hours tell you a battery’s capacity, but only at a given voltage. When you compare a 12V battery with a 36V battery, or a lead-acid bank with a lithium battery, amp-hours can mislead. Watt-hours and kilowatt-hours solve that by measuring energy directly. This guide shows how to convert and how to use the results.

The formulas

  • Watt-hours (Wh) = amp-hours (Ah) x voltage (V)
  • Kilowatt-hours (kWh) = watt-hours ÷ 1,000
  • Amp-hours = watt-hours ÷ voltage

That’s it. The only question is which voltage to use.

Which voltage?

Use the battery’s nominal voltage:

  • 12V lead-acid: 12V.
  • 12V LiFePO4: 12.8V, because a LiFePO4 battery has four cells at 3.2V nominal each. That’s why EPOCH lists its 12V 100Ah Eco at 1.28 kWh.
  • 24V, 36V and 48V LiFePO4: 25.6V, 38.4V and 51.2V. EPOCH’s 24V 100Ah lists 2.56 kWh, and its 36V 50Ah lists 1.92 kWh.

Some makers round to 12V, 24V and so on. The difference is small, about 7%, but it’s worth knowing when you compare listings.

At-a-glance summary: Watt-hours = amp-hours x voltage; divide by 1,000 for kWh; Watt-hours let you compare batteries and banks of different voltages fairly, such as a 12V 300Ah and a 36V 100Ah; Use nominal voltage (12.8V for 12V LiFePO4, 12V for lead-acid) and then apply usable depth of discharge
Key takeaways: Amp-Hours to Watt-Hours and kWh: Battery Math Made Simple

Worked examples

Battery Calculation Energy
12V 100Ah lithium 100 x 12.8 1,280 Wh (1.28 kWh)
12V 300Ah lithium 300 x 12.8 3,840 Wh (3.84 kWh)
24V 60Ah lithium 60 x 25.6 1,536 Wh (1.54 kWh)
36V 100Ah lithium 100 x 38.4 3,840 Wh (3.84 kWh)
48V 100Ah lithium 100 x 51.2 5,120 Wh (5.12 kWh)
12V 105Ah lead-acid 105 x 12 1,260 Wh (1.26 kWh)
Pair of 6V 225Ah in series 225 x 12 2,700 Wh (2.7 kWh)

Notice that a 12V 300Ah battery and a 36V 100Ah battery store the same energy. In amp-hours they look very different; in watt-hours they’re equal.

Why watt-hours matter on boats

Comparing trolling banks. A 36V trolling motor uses about one-third the current of a 12V motor for the same power. A 36V 50Ah battery (1.92 kWh) stores more energy than a 12V 100Ah battery (1.28 kWh), even though its amp-hour number is half.

Comparing lithium and lead-acid. Watt-hours of rated energy aren’t the same as usable energy. Multiply by usable depth of discharge: about 50% for lead-acid, about 80–100% for lithium.

Battery Rated energy Usable fraction Usable energy
Group 27 lead-acid 105Ah 1.26 kWh 50% 0.63 kWh
12V 100Ah lithium 1.28 kWh 90% 1.15 kWh

Sizing for inverters and appliances. Appliances are rated in watts. A 60W refrigerator running a 50% duty cycle for 24 hours uses 60 x 0.5 x 24 = 720 Wh. Comparing that with battery watt-hours is straightforward. Remember inverter losses, often 10–15%.

Comparing prices. Price per kWh is the fairest way to compare batteries of different voltages and chemistries. See battery price per kWh.

Converting loads from watts to amps

Amps = watts ÷ volts. A 120W fish finder and graph setup on a 12V system draws about 10A. A 1,000W inverter load draws roughly 90A from a 12V bank after losses, but only about 22A from a 48V bank. Higher-voltage banks reduce current, cable size and voltage drop.

Runtime from watt-hours

Runtime (hours) ≈ usable watt-hours ÷ load in watts.

Example: a 12V 300Ah lithium battery (3.84 kWh, about 3.4 kWh usable at 90%) running a 400W load lasts about 8.5 hours, a bit less with inverter losses.

Charging in watt-hours

Charger output is usually listed in amps at the battery voltage. A 12V 15A charger delivers about 15 x 14V ≈ 210W. Recharging 1 kWh takes about 5 hours, plus losses. A 36V 15A charger delivers roughly three times the power, about 600W, so it refills the same watt-hours in about a third of the time.

Quick conversion table for 12V batteries

Amp-hours Lead-acid (12V) LiFePO4 (12.8V)
50Ah 600 Wh 640 Wh
100Ah 1,200 Wh 1,280 Wh
200Ah 2,400 Wh 2,560 Wh
300Ah 3,600 Wh 3,840 Wh
460Ah 5,520 Wh 5,888 Wh

A worked boat example

Say you run a center console with these house loads on an overnight trip:

Load Watts Hours Watt-hours
Electronics (two displays, radar idle) 60W 6 360 Wh
12V refrigerator (50% duty) 50W 24 600 Wh
Anchor and cabin lights 15W 10 150 Wh
Phone and device charging 20W 4 80 Wh
Total 1,190 Wh

Add 25% margin to get about 1,500 Wh. For lithium at 90% usable, you’d want about 1.7 kWh of rated capacity, which is a 12V 135Ah or larger battery. For lead-acid at 50% usable, you’d need about 3 kWh rated, roughly a 12V 250Ah bank, such as a pair of 6V golf-cart batteries. That’s the difference between one 27-pound battery and two 60-plus-pound batteries.

Comparing listings that use different units

Some listings show energy in kWh, some in Wh, and some show only amp-hours. Convert everything to watt-hours using nominal voltage, then compare. If one listing rounds 12.8V to 12V, recalculate with the same voltage for every battery so the comparison is fair.

Common mistakes

  • Adding amp-hours across a series bank. Three 100Ah batteries in series are 100Ah at 36V, not 300Ah. In watt-hours, it’s 3.84 kWh for lithium.
  • Ignoring usable capacity. Rated watt-hours overstate what lead-acid delivers.
  • Forgetting conversion losses. Inverters, DC-DC chargers and wiring all lose a little energy.

More reading

Start with amp-hours explained, then read depth of discharge to understand usable energy and battery C-rate for charge and discharge limits. The marine battery buying guide puts it all together. The BCI group size guide shows typical capacity per size, and buying a marine battery online covers ordering.

Products mentioned

Frequently asked questions

How do I convert amp-hours to watt-hours?

Multiply amp-hours by the battery’s nominal voltage.

How many kWh is a 12V 100Ah lithium battery?

About 1.28 kWh, using LiFePO4’s 12.8V nominal voltage.

Why compare batteries in watt-hours?

Watt-hours account for voltage, so you can compare 12V, 24V, 36V and 48V batteries fairly.

Is a 36V 50Ah battery bigger than a 12V 100Ah?

In energy, yes: about 1.92 kWh versus 1.28 kWh.

How do I find usable watt-hours?

Multiply rated watt-hours by usable depth of discharge: about 50% for lead-acid, 80–100% for lithium.

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