Problem 1RQ Problem 2RQ: On the Bode magnitude plot, the slope of 1/5+j2 for large values of is (a) 20 dB/decade (b) 40... Problem 3RQ: On the Bode phase plot for 0.5 50, the slope of [1 + j10 2/25]2 is (a) 45/decade (b) 90/decade... Problem 4RQ: How much inductance is needed to resonate at 5 kHz with a capacitance of 12 nF? (a) 2,652 H (b)... Problem 5RQ: The difference between the half-power frequencies is called the: (a) quality factor (b) resonant... Problem 6RQ Problem 7RQ Problem 8RQ Problem 9RQ: What kind of filter can be used to select a signal of one particular radio station? (a) low-pass (b)... Problem 10RQ: A voltage source supplies a signal of constant amplitude, from 0 to 40 kHz, to an RC low-pass... Problem 1P: Find the transfer function Io/Ii of the RL circuit in Fig. 14.68. Express it using 0 = R/L. Problem 2P: Using Fig. 14.69, design a problem to help other students better understand how to determine... Problem 3P: For the circuit shown in Fig. 14.70, find H(s) = V0(s)/Ii(s). Problem 4P: Find the transfer function H(s) = Vo/Vi of the circuit shown in Fig. 14.71. Problem 5P: For the circuit shown in Fig. 14.72, find H(s) = Vo/Is. Problem 6P: For the circuit shown in Fig. 14.73, find H(s) = Vo(s)/Vs(s). Problem 7P: Calculate |H()| if HdB equals (a) 0.1 dB (b) 5 dB (c) 215 dB Problem 8P: Design a problem to help other students calculate the magnitude in dB and phase in degrees of a... Problem 9P: A ladder network has a voltage gain of H()=10(1+j)(10+j) Sketch the Bode plots for the gain. Problem 10P: Design a problem to help other students better understand how to determine the Bode magnitude and... Problem 11P: Sketch the Bode plots for H()=0.2(10+j)j(2+j) Problem 12P: A transfer function is given by T(s)=100(s+10)s(s+10) Sketch the magnitude and phase Bode plots. Problem 13P: Construct the Bode plots for G(s)=0.1(s+1)s2(s+10),s=j Problem 14P: Draw the Bode plots for H()=250(j+1)j(2+10j+25) Problem 15P Problem 16P: Sketch Bode magnitude and phase plots for H(s)=1.6s(s2+s+16), s = j Problem 17P: Sketch the Bode plots for G(s)=s(s+2)2(s+1), s = j Problem 18P: A linear network has this transfer function H(s)=7s2+s+4s3+8s2+14s+5, s = j Use MATLAB or equivalent... Problem 19P: Sketch the asymptotic Bode plots of the magnitude and phase for H(s)=80s(s+10)(s+20)(s+40), s = j Problem 20P: Design a more complex problem than given in Prob. 14.10, to help other students better understand... Problem 21P: Sketch the magnitude Bode plot for H(s)=10s(s+20)(s+1)(s2+60s+400), s = j Problem 22P: Find the transfer function H() with the Bode magnitude plot shown in Fig. 14.74. Figure 14.74 Problem 23P: The Bode magnitude plot of H() is shown in Fig. 14.75. Find H(). Figure 14.75 Problem 24P: The magnitude plot in Fig. 14.76 represents the transfer function of a preamplifier. Find H(s).... Problem 25P: A series RLC network has R = 2 k, L = 40 mH, and C = 1 F. Calculate the impedance at resonance and... Problem 26P: Design a problem to help other students better understand 0, Q, and B at resonance in series RLC... Problem 27P: Design a series RLC resonant circuit with 0 = 40 rad/s and B = 10 rad/s. Problem 28P: Design a series RLC circuit with B = 20 rad/s and 0 = 1,000 rad/s. Find the circuits Q. Let R = 10 . Problem 29P: Let vs = 20 cos(at) V in the circuit of Fig. 14.77. Find 0, Q, and B, as seen by the capacitor.... Problem 30P: A circuit consisting of a coil with inductance 10 mH and resistance 20 is connected in series with... Problem 31P: Design a parallel resonant RLC circuit with 0 = 100 krad/s and a bandwidth of 10 krad/s.... Problem 32P: Design a problem to help other students better understand the quality factor, the resonant... Problem 33P: A parallel resonant circuit with a bandwidth of 40 krad/s and the half-power frequencies are 1 =... Problem 34P: A parallel RLC circuit has R = 100 k, L = 100 mH, and a C = 10 F. Determine the value of Q, the... Problem 35P: A parallel RLC circuit has R = 10 k, L = 100 mH, and a resonant frequency of 200 krad/s. Calculate... Problem 36P: It is expected that a parallel RLC resonant circuit has a midband admittance of 25 103 S, quality... Problem 37P: Rework Prob. 14.25 if the elements are connected in parallel. A series RLC network has R = 2 k, L =... Problem 38P: Find the resonant frequency of the circuit in Fig. 14.78. Figure 14.78 For Prob. 14.38. Problem 39P: For the tank circuit in Fig. 14.79, find the resonant frequency. Figure 14.79 For Probs. 14.39,... Problem 40P Problem 41P: Using Fig. 14.80, design a problem to help other students better understand the quality factor, the... Problem 42P: For the circuits in Fig. 14.81, find the resonant frequency 0, the quality factor Q, and the... Problem 43P: Calculate the resonant frequency of each of the circuits in Fig. 14.82. Figure 14.82 Problem 44P: For the circuit in Fig. 14.83, find: (a) the resonant frequency 0 (b) Zin(0) Figure 14.83 Problem 45P: For the circuit shown in Fig. 14.84. find 0, B, and Q, as seen by the voltage across the inductor.... Problem 46P: For the network illustrated in Fig. 14.85, find (a) the transfer function H() = Vo()/I(), (b) the... Problem 47P Problem 48P: Find the transfer function Vo/Vs of the circuit in Fig. 14.86. Show that the circuit is a low-pass... Problem 49P: Design a problem to help other students better understand low-pass filters described by transfer... Problem 50P: Determine what type of filter is in Fig. 14.87. Calculate the corner frequency fc. Figure 14.87 Problem 51P: Design an RL low-pass filter that uses a 40-mH coil and has a cutoff frequency of 5 kHz. Problem 52P: Design a problem to help other students better understand passive high-pass filters. Problem 53P: Design a series RLC type band-pass filter with cutoff frequencies of 10 kHz and 11 kHz. Assuming C =... Problem 54P: Design a passive band-stop filter with 0 = 10 rad/s and Q = 20. Problem 55P: Determine the range of frequencies that will be passed by a series RLC band-pass filter with R = 10... Problem 56P: (a) Show that for a band-pass filter, H(s)=sBs2+sB+02,s=j where B = bandwidth of the filter and 0 is... Problem 57P: Determine the center frequency and bandwidth of the band-pass filters in Fig. 14.88. Problem 58P: The circuit parameters for a series RLC band-stop filter are R = 250 , L = 1 mH, C = 40 pF.... Problem 59P: Find the bandwidth and center frequency of the band-stop filter of Fig. 14.89. Figure 14.89 Problem 60P: Obtain the transfer function of a high-pass filter with a passband gain of 100 and a cutoff... Problem 61P: Find the transfer function for each of the active filters in Fig. 14.90. Figure 14.90 Problem 62P: The filter in Fig. 14.90(b) has a 3-dB cutoff frequency at 1 kHz. If its input is connected to a... Problem 63P: Design an active first-order high-pass filter with H(s)=100ss+10,s=j Use a 1-F capacitor. Problem 64P: Obtain the transfer function of the active filter in Fig. 14.91 on the next page. What kind of... Problem 65P: A high-pass filter is shown in Fig. 14.92. Show that the transfer function is H()=1+RfRijRC1+jRC... Problem 66P: A general first-order filter is shown in Fig. 14.93. (a) Show that the transfer function is... Problem 67P: Design an active low-pass filter with dc gain of 0.25 and a corner frequency of 500 Hz. Problem 68P: Design a problem to help other students better understand the design of active high-pass filters... Problem 69P: Design the filter in Fig. 14.94 to meet the following requirements: (a) It must attenuate a signal... Problem 70P: A second-order active filter known as a Butterworth filter is shown in Fig. 14.95. (a) Find the... Problem 71P: Use magnitude and frequency scaling on the circuit of Fig. 14.79 to obtain an equivalent circuit in... Problem 72P: Design a problem to help other students better understand magnitude and frequency scaling. Problem 73P: Calculate the values of R, L, and C that will result in R = 12 k, L = 40 H, and C = 300 nF... Problem 74P Problem 75P: In an RLC circuit, R = 20 , L = 4 H, and C = 1 F. The circuit is magnitude-scaled by 10 and... Problem 76P: Given a parallel RLC circuit with R = 5 k, L = 10 mH, and C = 20 F, if the circuit is... Problem 77P: A series RLC circuit has R = 10 , 0 = 40 rad/s, and B = 5 rad/s. Find L and C when the circuit is... Problem 78P: Redesign the circuit in Fig. 14.85 so that all resistive elements are scaled by a factor of 1,000... Problem 79P: Refer to the network in Fig. 14.96. (a) Find Zin(s). (b) Scale the elements by Km = 10 and Kf = 100.... Problem 80P: (a) For the circuit in Fig. 14.97, draw the new circuit after it has been scaled by Km = 200 and Kf... Problem 81P: The circuit shown in Fig. 14.98 has the impedance Z(s)=1,000(s+1)(s+1+j50)(s+1j50), s = j Find: (a)... Problem 82P: Scale the low-pass active filter in Fig. 14.99 so that its corner frequency increases from 1 rad/s... Problem 83P: The op amp circuit in Fig. 14.100 is to be magnitude-scaled by 100 and frequency-scaled by 105. Find... Problem 84P: Using PSpice or MultiSim, obtain the frequency response of the circuit in Fig. 14.101 on the next... Problem 85P: Use PSpice or MultiSim to obtain the magnitude and phase plots of Vo/Is of the circuit in Fig.... Problem 86P: Using Fig. 14.103, design a problem to help other students better understand how to use PSpice to... Problem 87P: In the interval 0.1 f 100 Hz, plot the response of the network in Fig. 14.104. Classify this... Problem 88P: Use PSpice or MultiSim to generate the magnitude and phase Bode plots of Vo in the circuit of Fig.... Problem 89P: Obtain the magnitude plot of the response Vo in the network of Fig. 14.106 for the frequency... Problem 90P: Obtain the frequency response of the circuit in Fig. 14.40 (see Practice Problem 14.10). Take R1 =... Problem 91P: For the tank circuit of Fig. 14.79, obtain the frequency response (voltage across the capacitor)... Problem 92P: Using PSpice or MultiSim, plot the magnitude of the frequency response of the circuit in Fig. 14.85.... Problem 93P: For the phase shifter circuit shown in Fig. 14.107, find H = Vo/VS. Problem 94P: For an emergency situation, an engineer needs to make an RC high-pass filter. He has one 10-pF... Problem 95P: A series-tuned antenna circuit consists of a variable capacitor (40 pF to 360 pF) and a 240-H... Problem 96P: The crossover circuit in Fig. 14.108 is a low-pass filter that is connected to a woofer. Find the... Problem 97P: The crossover circuit in Fig. 14.109 is a high-pass filter that is connected to a tweeter. Determine... Problem 98CP: A certain electronic test circuit produced a resonant curve with half-power points at 432 Hz and 454... Problem 99CP: In an electronic device, a series circuit is employed that has a resistance of 100 , a capacitive... Problem 100CP: In a certain application, a simple RC low-pass filter is designed to reduce high frequency noise. If... Problem 101CP: In an amplifier circuit, a simple RC high-pass filter is needed to block the dc component while... Problem 102CP: Practical RC filter design should allow for source and load resistances as shown in Fig. 14.110. Let... Problem 103CP: The RC circuit in Fig. 14.111 is used for a lead compensator in a system design. Obtain the transfer... Problem 104CP: A low-quality-factor, double-tuned band-pass filter is shown in Fig. 14.112. Use PSpice or MultiSim... format_list_bulleted