CSLB General Building (B) — All Questions

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18 questions

Theory & Design

A load draws 80 kW of real power and 100 kVA of apparent power. What is the power factor?

  • a.1.0
  • b.0.8
  • c.0.6
  • d.0.9

Power factor = real power / apparent power = 80 kW / 100 kVA = 0.8.

Theory & Design

For a load of 80 kW real and 100 kVA apparent, what is the reactive power?

  • a.80 kVAR
  • b.100 kVAR
  • c.60 kVAR
  • d.40 kVAR

Reactive power = sqrt(kVA^2 - kW^2) = sqrt(100^2 - 80^2) = sqrt(3,600) = 60 kVAR.

Theory & Design

What is the real power of a three-phase load at 480 V, 50 A, and 0.85 power factor?

  • a.24,960 W
  • b.41,568 W
  • c.30,000 W
  • d.35,326 W

P = 1.732 x V x I x PF = 1.732 x 480 x 50 x 0.85 = 35,326 W.

Theory & Design

In a balanced wye (star) three-phase system, the line current is:

  • a.Equal to the phase current
  • b.1.732 times the phase current
  • c.0.577 times the phase current
  • d.2 times the phase current

In a wye connection the same conductor carries phase and line current, so line current equals phase current.

Theory & Design

In a balanced delta three-phase system, the line current equals:

  • a.The phase current
  • b.1.732 times the phase current
  • c.0.577 times the phase current
  • d.3 times the phase current

In a delta connection the line current is the square root of 3 (1.732) times the phase (winding) current.

Theory & Design

In a 208Y/120-V wye system, what is the phase (line-to-neutral) voltage?

  • a.208 V
  • b.240 V
  • c.120 V
  • d.277 V

Line-to-neutral voltage = line-to-line / 1.732 = 208 / 1.732 = 120 V.

Theory & Design

In a 480Y/277-V system, what is the line-to-neutral voltage?

  • a.120 V
  • b.240 V
  • c.208 V
  • d.277 V

Line-to-neutral = 480 / 1.732 = 277 V.

Theory & Design

An 80-kW load at 0.80 power factor is to be corrected to 0.95. How many kVAR of capacitance are required (tan 36.87 = 0.75, tan 18.19 = 0.329)?

  • a.33.7 kVAR
  • b.60 kVAR
  • c.48 kVAR
  • d.20 kVAR

Qc = kW x (tan(theta1) - tan(theta2)) = 80 x (0.750 - 0.329) = 80 x 0.421 = 33.7 kVAR.

Theory & Design

In a three-phase, four-wire wye system serving nonlinear loads, which harmonic order adds arithmetically in the neutral?

  • a.2nd
  • b.3rd
  • c.5th
  • d.7th

Triplen harmonics, principally the 3rd, are in phase across all three phases and add in the neutral rather than canceling.

Theory & Design

On a feeder with significant harmonic (nonlinear) load, the neutral conductor is treated as:

  • a.Not a current-carrying conductor
  • b.A half current-carrying conductor
  • c.A current-carrying conductor
  • d.An ignored conductor

Where the major portion of the load is nonlinear, the neutral carries harmonic current and must be counted as a current-carrying conductor for adjustment.2023 NEC 310.15(E)

Theory & Design

A three-phase panel has phase loads of A = 40 A, B = 30 A, C = 20 A. What is the ideal balanced current per phase?

  • a.40 A
  • b.20 A
  • c.25 A
  • d.30 A

Total = 40 + 30 + 20 = 90 A; balanced across three phases = 90 / 3 = 30 A per phase.

Theory & Design

A single-line (one-line) diagram represents an electrical system by:

  • a.One line for each circuit or set of conductors
  • b.Each individual conductor drawn separately
  • c.The physical layout of raceways
  • d.Only the branch-circuit wiring

A one-line diagram uses a single line and standard symbols to represent circuits and equipment, simplifying analysis of the power system.

Theory & Design

A transformer steps 480 V down to 120 V. What is its turns (voltage) ratio?

  • a.2:1
  • b.4:1
  • c.1:4
  • d.8:1

Turns ratio = primary voltage / secondary voltage = 480 / 120 = 4:1.

Theory & Design

A transformer has a 4:1 turns ratio and a 10-A primary current. What is the secondary current (ideal)?

  • a.10 A
  • b.2.5 A
  • c.40 A
  • d.20 A

Current is inversely proportional to the turns ratio: Is = Ip x (Np/Ns) = 10 x 4 = 40 A.

Theory & Design

An AC circuit at 240 V draws 12 A. What is the circuit impedance?

  • a.2 ohms
  • b.0.05 ohms
  • c.288 ohms
  • d.20 ohms

By Ohm's law for AC, Z = V / I = 240 / 12 = 20 ohms.

Theory & Design

A continuous load draws 40 A. At what minimum ampacity must the branch-circuit conductors and overcurrent device be rated?

  • a.50 A
  • b.40 A
  • c.32 A
  • d.45 A

Continuous loads require 125% sizing: 40 A x 1.25 = 50 A for the conductors and overcurrent device.2023 NEC 210.20(A)

Theory & Design

The demand factor of a system is defined as:

  • a.A value always greater than 1
  • b.Maximum demand divided by total connected load
  • c.Connected load divided by maximum demand
  • d.Always equal to 1

Demand factor = maximum demand / total connected load; it is 1 or less and reflects load diversity.

Theory & Design

What are the commonly recommended maximum voltage-drop limits for a branch circuit and for the combined feeder plus branch circuit?

  • a.5% and 8%
  • b.2% and 4%
  • c.3% and 5%
  • d.1% and 3%

The informational recommendation is 3% maximum on a branch circuit and 5% maximum for feeder plus branch circuit combined.

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