Watts from volts and amps, amps and ohms, or volts and ohms, with the power factor for single- and three-phase AC, plus optional kWh and cost per day, month and year.
Electrical Power Calculator - Watts, VA and kWh from V, A, Ω
Watts from volts and amps, amps and ohms, or volts and ohms, with the power factor for single- and three-phase AC, plus optional kWh and cost per day, month and year.
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Watts from any two electrical readings
A space heater pulling 12.5 A from a 120 V outlet turns 1.5 kW into heat, and two hours of that every day comes to 3 kWh. This calculator finds power from voltage and current, current and resistance, or voltage and resistance. For alternating current it also separates the watts the meter bills from the volt-amperes the wiring carries, on single-phase and three-phase supplies, and with hours of use and a price per kWh it adds the energy and the cost.
Five choices on the form
- What you know - voltage and current (DC or a resistive load), voltage, current and power factor on single-phase AC, the same on three-phase AC, current and resistance, or voltage and resistance.
- Voltage - in volts. A US outlet is 120 V, a dryer circuit 240 V, USB 5 V. On three-phase use the line-to-line figure, such as 208 V or 480 V.
- Current or resistance - amps from a nameplate or a clamp meter, ohms from a multimeter across a heating element.
- Power factor - AC modes only, a number from 0 to 1. Type 1 for heaters and incandescent bulbs, or the value printed on a motor nameplate.
- Hours per day and price per kWh - both optional. Hours give kWh per day, month and year; the price adds dollars.
Three supplies compared
The same pair of readings means different things depending on the supply. On DC and on a purely resistive AC load, volts times amps is the answer. With motors and electronics the power factor tells you how much of the current does work.
| Question | DC or resistive load | Single-phase AC | Three-phase AC |
|---|---|---|---|
| Real power | V × I | V × I × PF | √3 × V × I × PF |
| Apparent power | same as real power | V × I, in VA | √3 × V × I, in VA |
| Which voltage to enter | across the load | RMS, for example 120 V or 240 V | line to line, for example 208 V or 480 V |
| Pick this mode when | there is no motor or electronics, or the supply is a battery | the nameplate lists a power factor or a VA rating | the equipment is fed by three hot wires |
The formulas, with three sets of numbers
Power is the rate at which energy moves: P = V × I. Ohm's law, V = I × R, turns it into P = I² × R and P = V² ÷ R, which is why any two of the three readings are enough. Energy is power multiplied by time, so a 1 kW load running for one hour uses 1 kWh.
An element measuring 9.6 Ω on a 120 V outlet: 120² ÷ 9.6 = 1,500 W, and the current is 120 ÷ 9.6 = 12.5 A. At 2 h a day that is 3 kWh daily, 1,095 kWh a year, and at $0.17 per kWh $186.15 a year.
120 V and 10 A give 1,200 VA of apparent power. With a power factor of 0.8 the real power is 960 W, and the reactive part is √(1,200² − 960²) = 720 var.
480 V line to line, 20 A per line, power factor 0.9: 1.7321 × 480 × 20 = 16.628 kVA, times 0.9 = 14.965 kW. Leaving out the √3 would report 8.64 kW, about 42% too little.
One wattage, two outlet voltages
For a resistive load the same wattage needs half the current on a 240 V circuit and four times the resistance.
| Power | Current at 120 V | Resistance at 120 V | Current at 240 V | Resistance at 240 V |
|---|---|---|---|---|
| 60 W | 0.5 A | 240 Ω | 0.25 A | 960 Ω |
| 100 W | 0.833 A | 144 Ω | 0.417 A | 576 Ω |
| 600 W | 5 A | 24 Ω | 2.5 A | 96 Ω |
| 1,000 W | 8.333 A | 14.4 Ω | 4.167 A | 57.6 Ω |
| 1,500 W | 12.5 A | 9.6 Ω | 6.25 A | 38.4 Ω |
| 3,000 W | 25 A | 4.8 Ω | 12.5 A | 19.2 Ω |
| 4,800 W | 40 A | 3 Ω | 20 A | 12 Ω |
Where power estimates go wrong
Asked about watts, VA and kWh
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