Problem 1RQ: The average power absorbed by an inductor is zero, (a) True (b) False Problem 2RQ: The Thevenin impedance of a network seen from the load terminals is 80 + j55 . For maximum power... Problem 3RQ: The amplitude of the voltage available in the 60-Hz, 120-V power outlet in your home is: (a) 110 V... Problem 4RQ: If the load impedance is 20 j20, the power factor is (a) 0 (b) 1 (c) 0.7071 (d) none of these Problem 5RQ: A quantity that contains all the power information in a given load is the (a) power factor (b)... Problem 6RQ: Reactive power is measured in: (a) watts (b) VA (c) VAR (d) none of these Problem 7RQ: In the power triangle shown in Fig. 11.34(a), the reactive power is: (a) 1000 VAR leading (b) 1000... Problem 8RQ: For the power triangle in Fig. 11.34(b), the apparent power is: (a) 2000 VA (b) 1000 VAR (c) 866 VAR... Problem 9RQ: A source is connected to three loads Z1, Z2, and Z3 in parallel. Which of these is not true? (a) P =... Problem 10RQ: The instrument for measuring average power is the: (a) voltmeter (b) ammeter (c) wattmeter (d)... Problem 1P: If v(t) = 160 cos 50t V and i(t) = 33 sin (50t 30)A, calculate the instantaneous power and the... Problem 2P: Given the circuit in Fig. 11.35, find the average power supplied or absorbed by each element. Figure... Problem 3P: A load consists of a 60- resistor in parallel with a 90-F capacitor. If the load is connected to a... Problem 4P: Using Fig. 11.36, design a problem to help other students better understand instantaneous and... Problem 5P: ssuming that vs = 8 cos(2t 40) V in the circuit of Fig. 11.37, find the average power delivered to... Problem 6P: For the circuit in Fig. 11.38, is = 6 cos 103t A. Find the average power absorbed by the 50-... Problem 7P: Given the circuit of Fig. 11.39, find the average power absorbed by the 10- resistor. Figure 11.39 Problem 8P: In the circuit of Fig. 11.40, determine the average power absorbed by the 40- resistor. Figure 11.40 Problem 9P: For the op amp circuit in Fig. 11.41, Find the average power absorbed by the 20-k resistor. Figure... Problem 10P: In the op amp circuit in Fig. 11.42, find the total average power absorbed by the resistors. Figure... Problem 11P: For the network in Fig. 11.43, assume that the port impedance is Find the average power consumed by... Problem 12P: For the circuit shown in Fig. 11.44, determine the load impedance ZL for maximum power transfer (to... Problem 13P: The Thevenin impedance of a source is ZTh = 120 + j60 , while the peak Thevenin voltage is VTh = 165... Problem 14P: Using Fig. 11.45, design a problem to help other students better understand maximum average power... Problem 15P: In the circuit of Fig. 11.46, find the value of ZL that will absorb the maximum power and the value... Problem 16P: For the circuit in Fig. 11.47, find the value of ZL that will receive the maximum power from the... Problem 17P: Calculate the value of ZL in the circuit of Fig. 11.48 in order for ZL to receive maximum average... Problem 18P: Find the value of ZL in the circuit of Fig. 11.49 for maximum power transfer. Figure 11.49 Problem 19P: The variable resistor R in the circuit of Fig. 11.50 is adjusted until it absorbs the maximum... Problem 20P: The load resistance RL in Fig. 11.51 is adjusted until it absorbs the maximum average power.... Problem 21P: Assuming that the load impedance is to be purely resistive, what load should be connected to... Problem 22P: Find the rms value of the offset sine wave shown in Fig. 11.53. Figure 11.53 Problem 23P: Using Fig. 11.54, design a problem to help other students better understand how to find the rms... Problem 24P: Determine the rms value of the waveform in Fig. 11.55. Figure 11.55 Problem 25P: Find the rms value of the signal shown in Fig. 11.56. Figure 11.56 Problem 26P: Find the effective value of the voltage waveform in Fig. 11.57. Figure 11.57 Problem 27P: Calculate the rms value of the current waveform of Fig. 11.58. Figure 11.58 Problem 28P: Find the rms value of the voltage waveform of Fig, 11.59 as well as the average power absorbed by a... Problem 29P: Calculate the effective value of the current waveform in Fig. 11.60 and the average power delivered... Problem 30P: Compute the rms value of the waveform depicted in Fig. 11.61. Figure 11.61 Problem 31P: Find the rms value of the signal shown in Fig. 11.62. Figure 11.62 Problem 32P: Obtain the rms value of the current waveform shown in Fig. 11.63. Figure 11.63 Problem 33P: Determine the rms value for the waveform in Fig. 11.64. Figure 11.64 Problem 34P: Find the effective value f(t) defined in Fig. 11.65. Figure 11.65 Problem 35P: One cycle of a periodic voltage waveform is depicted in Fig. 11.66. Find the effective value of the... Problem 36P: Calculate the rms value for each of the following functions: (a) i(t) = 10 A (b) v(t) = 4 + 3 cos 5t... Problem 37P: Design a problem to help other students better understand how to determine the rms value of the sum... Problem 38P: For the power system in Fig. 11.67, find: (a) the average power, (b) the reactive power, (c) the... Problem 39P: An ac motor with impedance ZL = 2 + j 1.2 is supplied by a 220-V, 60-Hz source, (a) Find pf, P, and... Problem 40P: Design a problem to help other students better understand apparent power and power factor. Problem 41P: Obtain the power factor for each of the circuits in Fig. 11.68. Specify each power factor as leading... Problem 42P: A 110-V rms, 60-Hz source is applied to a load impedance Z. The apparent power entering the load is... Problem 43P: Design a problem to help other students understand complex power. Problem 44P: Find the complex power delivered by vs to the network in Fig. 11.69. Let vs = 100 cos 2000t V.... Problem 45P: The voltage across a load and the current through it are given by v(t) = 20 + 60 cos 100t V i(t) = 1... Problem 46P: For the following voltage and current phasors, calculate the complex power, apparent power, real... Problem 47P: For each of the following cases, find the complex power, the average power, and the reactive power:... Problem 48P: Determine the complex power for the following cases: (a) P = 269 W, Q = 150 VAR (capacitive) (b) Q =... Problem 49P: Find the complex power for the following cases: (a) P = 4 kW, pf = 0.86 (lagging) (b) S = 2 kVA, P =... Problem 50P: Obtain the overall impedance for the following cases: (a) P = 1000 W, pf = 0.8 (leading), Vrms = 220... Problem 51P: For the entire circuit in Fig. 11.70, calculate: (a) the power factor (b) the average power... Problem 52P: In the circuit of Fig. 11.71, device A receives 2 kW at 0.8 pf lagging, device B receives 3 kVA at... Problem 53P: In the circuit of the Fig. 11.72, load A receives 4 k VA at 0.8 pf leading. Load B receives 2.4 kVA... Problem 54P: For the network in Fig. 11.73, find the complex power absorbed by each element. Figure 11.73 Problem 55P: Using Fig. 11.74, design a problem to help other students better understand the conservation of AC... Problem 56P: Obtain the complex power delivered by the source in the circuit of Fig. 11.75. Figure 11.75 For... Problem 57P: For the circuit in Fig. 11.76, find the average, reactive, and complex power delivered by the... Problem 58P: Obtain the complex power delivered to the 10-k resistor in Fig. 11.77 below. Figure 11.77 Problem 59P: Calculate the reactive power in the inductor and capacitor in the circuit of Fig. 11.78. Figure... Problem 60P: For the circuit in Fig. 11.79, find Vo and the input power factor. Figure 11.79 Problem 61P: Given the circuit in Fig. 11.80, find Io and the overall complex power supplied. Problem 62P: For the circuit in Fig. 11.81, find Vs. Problem 63P: Find Io in the circuit of Fig. 11.82. Figure 11.82 Problem 64P: Determine Is in the circuit of Fig. 11.83, if the voltage source supplies 6 kW and 1.2 kVAR... Problem 65P: In the op amp circuit of Fig. 11.84, vs = 4 cos 104t V. Find the average power delivered to the 50-k... Problem 66P: Obtain the average power absorbed by the 10- resistor in the op amp circuit in Fig. 11.85. Problem 67P: For the op amp circuit in Fig. 11.86, calculate: (a) the complex power delivered by the voltage... Problem 68P: Compute the complex power supplied by the current source in the series RLC circuit in Fig. 11.87.... Problem 69P: Refer to the circuit shown in Fig. 11.88. (a) What is the power factor? (b) What is the average... Problem 70P: Design a problem to help other students better understand power factor correction. Problem 71P: Three loads are connected in parallel to a rms source. Load 1 absorbs 60 kVAR at pf = 0.85 lagging,... Problem 72P: Two loads connected in parallel draw a total of 2.4 kW at 0.8 pf lagging from a 120-V rms, 60-Hz... Problem 73P: A 240-V rms 60-Hz supply serves a load that is 10 kW (resistive), 15 kVAR (capacitive), and 22 kVAR... Problem 74P: A 120-V rms 60-Hz source supplies two loads connected in parallel, as shown in Fig. 11.89. (a) Find... Problem 75P: Consider the power system shown in Fig. 11.90. Calculate: (a) the total complex power (b) the power... Problem 76P: Obtain the wattmeter reading of the circuit in Fig. 11.91. Problem 77P: What is the reading of the wattmeter in the network of Fig. 11.92? Problem 78P: Find the wattmeter reading of the circuit shown in Fig. 11.93. Problem 79P: Determine the wattmeter reading of the circuit in Fig. 11.94. Problem 80P: The circuit of Fig. 11.95 portrays a wattmeter connected into an ac network. (a) Find the magnitude... Problem 81P: Design a problem to help other students better understand how to correct power factor to values... Problem 82P: A 240-V rms 60-Hz source supplies a parallel combination of a 5-kW heater and a 30-kVA induction... Problem 83P: Oscilloscope measurements indicate that the peak voltage across a load and the peak current through... Problem 84P: A consumer has an annual consumption of 1200 MWh with a maximum demand of 2.4 MWh. The maximum... Problem 85P: A regular household system of a single-phase three-wire circuit allows the operation of both 120-V... Problem 86CP: A transmitter delivers maximum power to an antenna when the antenna is adjusted to represent a load... Problem 87CP: In a TV transmitter, a series circuit has an impedance of 3 k and a total current of 50 mA. If the... Problem 88CP: A certain electronic circuit is connected to a 110-V ac line. The root-mean-square value of the... Problem 89CP: An industrial heater has a nameplate that reads: 210 V 60 Hz 12 kVA 0.78 pf lagging Determine: (a)... Problem 90CP: A 2000-kW turbine-generator of 0.85 power factor operates at the rated load. An additional load of... Problem 91CP: The nameplate of an electric motor has the following information: Line voltage: 220 V rms Line... Problem 92CP: As shown in Fig. 11.97, a 550-V feeder line supplies an industrial plant consisting of a motor... Problem 93CP: A factory has the following four major loads: A motor rated at 5 hp, 0.8 pf lagging (1hp = 0.7457... Problem 94CP: A 1-MVA substation operates at full load at 0.7 power factor. It is desired to improve the power... Problem 95CP Problem 96CP: A power amplifier has an output impedance of 40 + j8 . It produces a no-load output voltage of 146 V... Problem 97CP: A power transmission system is modeled as shown in Fig. 11.99. If rms, find the average power... format_list_bulleted