APFC Panel: 7 Essential Parts and a Smart Sizing Method

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Industrial Electrical Systems
APFC Panel: 7 Essential Parts and a Smart Sizing Method

Loads change all day, and an automatic panel adds or removes capacitor steps so the power factor stays close to unity.

Power Factor Capacitor Steps APFC Relay Detuned Reactor

Automatic power factor correction switches capacitor banks in and out as the reactive demand of a plant changes. It avoids utility penalties, frees transformer capacity and lowers cable losses.

Hello everyone, today we are going to learn how an APFC panel works, which parts it contains, how to size its kVAR rating and how to choose between contactor and thyristor switching.
APFC panel

What Is an APFC Panel?

An APFC panel is an automatic power factor correction panel that measures the reactive power of a plant and switches capacitor steps to keep the power factor at a target, usually 0.95 to 0.99. It is the automatic version of a fixed capacitor bank.

Schneider Electric India describes it as a panel that switches capacitor banks automatically as the load changes. Better power factor lowers electricity costs and penalties.

Automatic power factor correction panel with capacitor steps and connection scheme
Image credit: ForumElectrical

Inductive loads such as motors and transformers draw lagging reactive current. Capacitors supply this locally, as explained in power factor correction.

Reactive, active and apparent power are linked by the power triangle, covered in active, reactive and apparent power. The panel only changes the reactive side.

7 Essential APFC Panel Parts

1
APFC Relay
Controller that reads PF and decides which steps to switch.
2
Current Transformer
Measures total plant current on the incomer.
3
Capacitor Units
Supply reactive power in fixed kVAR steps.
4
Switching Devices
Capacitor duty contactors or thyristor switches.
5
Detuned Reactors
Series reactors that block harmonic resonance.
6
Protection
MCCB or HRC fuses for every step.
7
Discharge Resistors
Drain capacitor voltage before reconnection.

The CT must see the load current plus the capacitor current, so it is installed upstream of the capacitor tap off. A wrong CT position is the most common reason a panel hunts or never switches, see CT working principle.

IEC 60831 requires capacitors to discharge to 50 V or less within about one minute. The relay therefore waits before reconnecting the same step.

How the Controller Switches Steps

MeasureRelay reads voltage and CT current
CalculateFinds kVAR needed for target PF
Choose StepSelects the best capacitor combination
SwitchContactor or thyristor connects the step
RotateShares duty between equal steps

Step ratios such as 1:1:2:2 or 1:2:4 give fine resolution with few steps. A 1:2:4 arrangement of 25 kVAR steps can cover 25 to 175 kVAR in 25 kVAR increments.

The controller also uses a time delay so it does not chase every short load swing. Faster control needs thyristor switching.

Contactor vs Thyristor APFC Panel

FeatureContactor SwitchedThyristor Switched
Response timeSecondsAbout one cycle
Inrush on switchingHigh, needs damping contactorsAlmost none, zero crossing
WearMechanical contacts wearNo moving parts
Best forSteady process loadsWelding, cranes, presses
CostLowerHigher

Schneider lists relay based, contactor based and thyristor based types, with thyristors used for rapidly fluctuating loads. The switching device itself is described in thyristor and TRIAC.

Where drives create harmonics, capacitors can resonate and fail. A 7 percent detuned reactor tunes the step near 189 Hz, below the 5th harmonic, as explained in power harmonics.

APFC Panel Sizing Formula

kVAR = kW × (tan φ1 minus tan φ2)

Worked example:
Load = 500 kW, PF from 0.75 to 0.95
tan φ1 = tan(arccos 0.75) = 0.882
tan φ2 = tan(arccos 0.95) = 0.329
kVAR = 500 × 0.553 = 276.6
Choose about 300 kVAR, for example 25 + 25 + 50 + 50 + 75 + 75

A small margin covers capacitor ageing and future load growth. Compare with the capacitor bank kVAR formula and the power factor improvement calculation.

Detuned capacitors must be rated for the higher voltage caused by the series reactor, often 440 V or 480 V units on a 415 V system.

Maintenance and Troubleshooting

PF Not Improving
Check CT position and polarity.
Capacitor Bulging
Overvoltage, heat or harmonics.
Contactor Welding
Missing damping resistors.
Fuse Blowing
Resonance or failed capacitor.
Hunting Steps
Delay too short or steps too large.
Overheating
Poor ventilation in the panel.

Measure capacitor current every quarter and compare with the rated value. Falling current shows lost capacitance, while a high THD reading points to resonance risk.

APFC Panel kVAR Calculator

Required Capacitor Rating
Result
Required 276.6 kVAR

Round up to standard step sizes and add a margin of about 10 percent. Check the transformer and cable ratings before adding a large bank.

Benefits
  • Avoids low PF penalties.
  • Frees transformer kVA.
  • Lowers cable losses.
  • Improves voltage.
Risks if Poorly Designed
  • Harmonic resonance.
  • Overcompensation to leading PF.
  • Contactor wear.
  • Capacitor overheating.

ABB Capacitor Bank Guide PDF

PDF
Low Voltage Capacitor Banks for Automatic Power Factor Correction
ABB brochure covering controllers, steps and detuned banks

Automatic PF Correction Training Video

APFC Panel FAQ

What does an APFC panel do?
It switches capacitor steps automatically to keep the power factor at its target.
Where is the CT fitted?
On the incomer, upstream of the capacitor connection.
Why use detuned reactors?
To prevent resonance with harmonics from drives.
When is thyristor switching needed?
For fast changing loads such as welders and cranes.
How is kVAR calculated?
kW multiplied by tan φ1 minus tan φ2.
What target PF is usual?
0.95 to 0.99 lagging.
Why is there a reconnection delay?
Capacitors must discharge before being switched in again.

Related Articles

External References

What We Learn Today

  • The APFC panel switches capacitor steps to track changing reactive demand.
  • CT position, step ratios and delays decide stable control.
  • Use thyristors for fast loads and detuned reactors where harmonics exist.
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