Size the shunt capacitor needed to raise the power factor: C = P·(tanφ₁ − tanφ₂)/(2π·f·U²). Returns compensated reactive power Qc, capacitive reactance Xc, capacitor current Ic, and the required capacitance in F/μF.
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Key facts
Category
Math & Numbers
Input types
number
Output type
json
Sample coverage
4
API ready
Yes
Overview
The Power Factor Correction Calculator helps electrical engineers and facility managers size the shunt capacitor required to improve system efficiency. By entering the active power, initial and target power factors, line frequency, and voltage, you can instantly calculate the compensated reactive power (Qc), capacitive reactance (Xc), capacitor current (Ic), and the exact capacitance needed in farads and microfarads.
When to use
Designing capacitor banks for industrial facilities to avoid low power factor penalties from utility companies.
Sizing shunt capacitors for electrical systems to reduce line losses and voltage drops.
Analyzing reactive power compensation requirements during electrical system upgrades or equipment installations.
How it works
1Enter the active power (P) in Watts, the initial lagging power factor (cosφ₁), and your desired target power factor (cosφ₂).
2Input the AC line frequency (f) in Hz and the voltage (U) across the capacitor in Volts.
3The calculator computes the initial and target tangent angles (tanφ₁ and tanφ₂) to determine the required compensated reactive power (Qc).
4It outputs the required capacitance in Farads and Microfarads, along with the capacitive reactance (Xc) and capacitor current (Ic).
Use cases
Calculating capacitor sizing for a manufacturing plant to eliminate utility billing surcharges.
Determining the reactive power compensation needed for a large induction motor installation.
Specifying component values for electrical distribution panel upgrades.
Examples
1. Sizing a Capacitor for a 5 kW Workshop Load
Electrical Contractor
Background
A small workshop operates a 5 kW inductive load with an inefficient power factor of 0.7. The utility company requires a minimum power factor of 0.95 to avoid penalties.
Problem
Determine the exact capacitance and current rating for a shunt capacitor connected to a 400V, 50Hz supply.
How to use
Set Active Power to 5000, Initial cosφ₁ to 0.7, Target cosφ₂ to 0.95, Frequency to 50, and Voltage to 400.
Outcome
The calculator determines that a 68.79 μF capacitor is required, providing 3457.6 var of reactive power compensation with a current rating of 8.64 A.
2. Industrial Motor Compensation at 230V
Facility Maintenance Engineer
Background
An industrial pump motor draws 10 kW at a 0.8 lagging power factor on a 230V, 60Hz line.
Problem
Calculate the necessary capacitance to raise the power factor to 0.98 to reduce line current and heat generation.
How to use
Input 10000 for Active Power, 0.8 for Initial cosφ₁, 0.98 for Target cosφ₂, 60 for Frequency, and 230 for Voltage.
Outcome
FAQ
What is power factor correction?
It is the process of improving a low power factor by adding capacitors to offset inductive reactive power, reducing overall current draw.
Why should I target a power factor below 1.0 instead of exactly 1.0?
Targeting exactly 1.0 requires an impractical amount of capacitance and risks overcorrection, which causes high voltage and resonance issues.
What voltage value should I enter for a three-phase system?
Enter the voltage that will be applied directly across the capacitor terminals, which depends on whether the capacitor bank is connected in delta or star.
How does frequency affect the required capacitance?
Higher AC frequencies require less capacitance to achieve the same reactive power compensation because capacitive reactance decreases as frequency increases.
What is the difference between active power (P) and reactive power (Q)?
Active power performs the actual work in a circuit, while reactive power sustains the electromagnetic fields in inductive loads like motors.