Chapter 4 of 516% of exam
AC Theory, Power Factor, and Circuit Design
AC Fundamentals and Ohm's Law
Impedance in an AC circuit is voltage divided by current (Z = V / I).
Apparent power (kVA), real power (kW), and reactive power (kVAR) form the power triangle.
Power factor equals real power divided by apparent power (kW / kVA).
Three-Phase Relationships
In a wye system, line current equals phase current and line voltage is 1.732 times phase voltage.
In a delta system, line voltage equals phase voltage and line current is 1.732 times phase current.
Three-phase power = 1.732 x V x I x power factor.
A 208Y/120-V system has 120 V line-to-neutral; a 480Y/277-V system has 277 V line-to-neutral.
Power Factor and Harmonics
Capacitor kVAR for correction = kW x (tan(theta1) - tan(theta2)).
Triplen (3rd-order) harmonics add in the neutral of a three-phase, four-wire system.
Neutrals of predominantly nonlinear loads are counted as current-carrying conductors for adjustment.
Circuit Design and Load Balancing
Continuous loads are sized at 125% of the load current for conductors and overcurrent devices.
Demand factor is maximum demand divided by connected load and is always 1 or less.
Balancing phase loads reduces neutral current and improves system efficiency.
Single-line diagrams use one line and standard symbols to represent the power system.
Test your knowledge
Practice questions on AC Theory, Power Factor, and Circuit Design
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Last updated: July 2026