Power Systems and Machines Flashcards
7 cards from real BEE practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.
Read the first 7 Power Systems and Machines flashcards as text
In a power system, HVDC transmission is preferred over HVAC for very long distances primarily because:
Answer: There are no reactive power or skin effect losses, reducing overall transmission losses
HVDC eliminates reactive power losses, capacitive charging, and skin effect, making it more efficient for distances beyond the breakeven point (~600–800 km).
A single-phase transformer has a turns ratio of 10:1 (primary:secondary). If the primary voltage is 2200 V and the primary current is 2 A (ideal transformer), what are the secondary voltage and current?
Answer: 220 V and 20 A
V2 = V1/n = 2200/10 = 220 V; I2 = I1 × n = 2 × 10 = 20 A for an ideal transformer.
The synchronous speed of a 4-pole, 60 Hz induction motor is:
Answer: 1800 RPM
Ns = 120f / P = 120 × 60 / 4 = 1800 RPM.
In power system load flow analysis, which bus has both real and reactive power injections specified as known?
Answer: PQ bus (load bus)
At a PQ bus, both P and Q are specified; voltage magnitude and angle are the unknowns to be solved.
What is the main advantage of using bundled conductors in extra-high-voltage (EHV) transmission lines?
Answer: Reduced corona discharge and lower effective reactance
Bundled conductors increase the effective conductor radius, reducing the electric field gradient and suppressing corona, while also lowering inductance.
Which characteristic distinguishes a reluctance motor from a conventional synchronous motor?
Answer: It has no field winding or permanent magnets; it runs synchronously due to rotor saliency
A reluctance motor has a salient-pole rotor with no excitation; torque is produced by the tendency of the rotor to align with the lowest reluctance path.
The voltage regulation of a transformer is defined as:
Answer: (No-load secondary voltage − Full-load secondary voltage) / Full-load secondary voltage × 100%
Voltage regulation = (VNL − VFL) / VFL × 100%, indicating how much the secondary voltage changes from no-load to full-load.