A 3-phase, 600 V motor, the load having 0.6 power factor uses two watt-meter to measure the power. If the power measured be 45 kW, then the reading of each instrument will be?(a) P1 = 35 kW, P2 = 10 kW(b) P1 = 47.25 kW, P2 = -2.25 kW(c) P1 = 39.82 kW, P2 = 5.179 kW(d) P1 = 45 kW, P2 = 0 kWThis question was addressed to me in an interview.I'm obligated to ask this question of Advanced Miscellaneous Problems on Measurement of Power in division Measurement of Power and Related Parameters of Electrical Measurements

A 3-phase, 600 V motor, the load having 0.6 power factor uses two watt

1.	A 3-phase, 600 V motor, the load having 0.6 power factor uses two watt-meter to measure the power. If the power measured be 45 kW, then the reading of each instrument will be?(a) P1 = 35 kW, P2 = 10 kW(b) P1 = 47.25 kW, P2 = -2.25 kW(c) P1 = 39.82 kW, P2 = 5.179 kW(d) P1 = 45 kW, P2 = 0 kWThis question was addressed to me in an interview.I'm obligated to ask this question of Advanced Miscellaneous Problems on Measurement of Power in division Measurement of Power and Related Parameters of Electrical Measurements
Answer» CORRECT option is (c) P1 = 39.82 kW, P2 = 5.179 kW Easy explanation: P1 + P2 = 45 kW And, cos ∅ = 0.6 ∴ tan ∅ = 1.33 Or, 1.33 = \(\sqrt{3} \FRAC{P_1 – P_2}{45} \) ∴ P1 – P2 = 34.64 kW ∴ P1 = 39.82 kW P2 = 5.179 kW.

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