Choose a method
Use kW and kVA, kW and kVAR, electrical measurements, or a measured phase angle.
Calculate AC power factor from kW and kVA, kW and kVAR, voltage and current, or phase angle. Review the complete power triangle and estimate the correction needed to reach a target power factor.
Select the method that matches the values available, enter the measurements in compatible units, then review power factor, phase angle, the complete power triangle, and the optional correction estimate.
Use kW and kVA, kW and kVAR, electrical measurements, or a measured phase angle.
Use RMS voltage and current plus real power from reliable nameplate or metering data.
Check the formula, phase angle, kVA, kVAR, quality band, and target correction requirement.
Power factor is the ratio of useful real power to total apparent power in an AC circuit. A value closer to 1 means more of the supplied current is producing useful work.
PF = P ÷ SPF = P ÷ √(P² + Q²)PF = cos(φ)Qc = P × [tan(φ1) − tan(φ2)]Real power (P), measured in watts or kilowatts, performs useful work. Reactive power (Q), measured in var or kVAR, supports magnetic and electric fields. Apparent power (S), measured in VA or kVA, is the combined electrical demand.
Lagging power factor is commonly associated with motors, transformers, and inductive loads. Leading power factor is commonly associated with capacitive systems or over-correction.
| Real power | Apparent / reactive value | Method | Power factor | Phase angle |
|---|---|---|---|---|
| 80 kW | 100 kVA | P ÷ S | 0.800 | 36.87° |
| 90 kW | 43.59 kVAR | P ÷ √(P² + Q²) | 0.900 | 25.84° |
| 95 kW | 100 kVA | P ÷ S | 0.950 | 18.19° |
| 100 kW | 100 kVA | Unity | 1.000 | 0° |
A power factor of 0.90 or higher is commonly considered good, while many facilities aim for 0.95 or better. The appropriate target depends on utility rules, equipment, operating conditions, and site design.
Divide real power in kW by apparent power in kVA. For example, 80 kW divided by 100 kVA gives a power factor of 0.80.
Lagging power factor means current lags voltage and is typical of inductive loads. Leading power factor means current leads voltage and is typical of capacitive loads or an over-corrected installation.
No. The magnitude of true power factor ranges from 0 to 1. A calculated value above 1 indicates inconsistent units, incorrect phase selection, or inaccurate measurements.
For the same useful kW, low power factor requires more current and kVA. This can increase conductor and transformer losses, reduce available system capacity, and may lead to utility demand charges or penalties.
It estimates the reactive compensation required for a selected target. A final capacitor-bank design requires harmonic, resonance, switching, protection, duty-cycle, and standards checks by a qualified professional.