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Battery power and energy

The key idea

Battery energy capacity sets how long storage can help. Its power limit sets how much demand it can supply at one time. Both constraints must pass.

Read both ratings

A 60 kWh battery and a 10 kW converter do not form an unlimited 60 kW source. The converter limits instantaneous output to 10 kW. Stored energy then limits how long that output can continue.

Not all nominal energy is available. The permitted state-of-charge range may leave a reserve at the bottom and headroom at the top. Conversion losses also reduce energy delivered to the AC bus.

Try the two limiting cases

The example begins at 90% state of charge and supplies a constant 10 kW demand. First, increase the energy capacity while leaving the power limit at 10 kW. Next, reduce the power limit to 5 kW. Even a full large battery now leaves half of the demand unmet.

Enough energy can still mean too little power
Usable stored energy
48 kWh
Delivered energy
45.6 kWh
Unmet demand
74.4 kWh
03581013kW00:0003:0006:0008:0011:00
  • Battery output
  • Demand
Read the exact values
Chart values in kW
Time / stepBattery outputDemand
00:0010.0010.00
01:0010.0010.00
02:0010.0010.00
03:0010.0010.00
04:005.6010.00
05:000.0010.00
06:000.0010.00
07:000.0010.00
08:000.0010.00
09:000.0010.00
10:000.0010.00
11:000.0010.00
0204060kWh stored0 h3 h6 h9 h12 h
  • Stored energy
Read the exact values
Chart values in kWh stored
Time / stepStored energy
0 h54.00
1 h43.47
2 h32.95
3 h22.42
4 h11.89
5 h6.00
6 h6.00
7 h6.00
8 h6.00
9 h6.00
10 h6.00
11 h6.00
12 h6.00
60 kWh
10 kW

Model note · 12-hour discharge test at a fixed 10 kW demand. Initial SoC 90%, minimum SoC 10%, one-way efficiency 95%. No charging, degradation or temperature limits. Values are hourly means.

The stored-energy curve shows the battery state. The output curve shows power delivered at the AC terminal. The final partial hour is represented by its mean output; the model does not claim that the battery can sustain that average for the entire hour before reaching its limit.

State the operating boundary

State of charge, or SoC, is the fraction of nominal stored energy remaining in this simple model. Usable stored energy depends on the allowed SoC range. The energy reaching the load also depends on discharge efficiency.

A battery can be full and still fail a high power peak. It can also meet the peak briefly and then reach its minimum SoC. These are different design findings and need different changes.

The math, if you want itOptional — the page reads completely without it

For nominal capacity C and an allowed state-of-charge window:

usable stored energy

Eusable = C · ( SoCmax − SoCmin )

The 60 kWh example has 60 × (0.9 − 0.1) = 48 kWh usable. At 95% discharge efficiency that is 45.6 kWh at the AC terminal, before any other constraint.

stored energy, step by step

Enext = E + η · Pcharge · Δt − Pdischarge · Δtη

Each step is limited by the power rating and the SoC bounds; charging and discharging do not occur in the same step here.

round trip from two one-way efficiencies

ηround trip = ηcharge · ηdischarge = 0.95 × 0.95 ≈ 0.90

Do not use 90.25% for both one-way terms; that counts the losses twice. Real performance also depends on technology, rate, temperature and ageing, which this example omits.

See it in Phasor

Enter storage energy, converter power and operating limits. Inspect the simulated SoC alongside unmet demand so a shortage can be traced to energy, power or dispatch behaviour.

Continue the design path

Bring storage into the hybrid plant energy balance, then compare generator dispatch strategies.