Electric Circuits, Student Value Edition Format: Unbound (saleable)
Electric Circuits, Student Value Edition Format: Unbound (saleable)
11th Edition
ISBN: 9780134747170
Author: NILSSON, James W.^riedel, Susan
Publisher: Prentice Hall
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Chapter 9, Problem 1P

a.

To determine

Find the maximum amplitude of the voltage.

a.

Expert Solution
Check Mark

Answer to Problem 1P

The maximum amplitude of the voltage is 40V_.

Explanation of Solution

Given data:

The given sinusoidal voltage is,

v(t)=40cos(100πt+60°)V (1)

Formula used:

Consider the general expression for sinusoidal voltage.

v(t)=Vmcos(ωt+ϕ)V (2)

Here,

Vm is the maximum amplitude.

ω is the frequency.

ϕ is the phase angle.

Calculation:

Compare equation (1) with equation (2), that is

Vm=40V

Conclusion:

Thus, the maximum amplitude of the voltage is 40V_.

b.

To determine

Find the value of frequency in hertz.

b.

Expert Solution
Check Mark

Answer to Problem 1P

The value of frequency in hertz is 50Hz_.

Explanation of Solution

Calculation:

Compare equation (1) with equation (2), that is

ω=100πrad/s2πf=100π {ω=2πf}f=100π2πf=50Hz

Conclusion:

Thus, the value of frequency in hertz is 50Hz_.

c.

To determine

Find the value of frequency in radians per second.

c.

Expert Solution
Check Mark

Answer to Problem 1P

The value of frequency in radians per second is 314.159rad/s_.

Explanation of Solution

Calculation:

Compare equation (1) with equation (2), that is

ω=100πrad/s=314.159rad/s

Conclusion:

Thus, the value of frequency in radians per second is 314.159rad/s_.

d.

To determine

Find the value of phase angle in radians.

d.

Expert Solution
Check Mark

Answer to Problem 1P

The value of phase angle in radians is 1.05rad_.

Explanation of Solution

Calculation:

Compare equation (1) with equation (2), that is

ϕ=60°=2π360°(60°)rad=1.047rad1.05rad

Conclusion:

Thus, the value of phase angle in radians is 1.05rad_.

e.

To determine

Find the value of phase angle in degrees.

e.

Expert Solution
Check Mark

Answer to Problem 1P

The value of phase angle in degrees is 60°_.

Explanation of Solution

Calculation:

Compare equation (1) with equation (2), that is

ϕ=60°

Conclusion:

Thus, the value of phase angle in degrees is 60°_.

f.

To determine

Find the value of period in milliseconds.

f.

Expert Solution
Check Mark

Answer to Problem 1P

The value of period in milliseconds is 20ms_.

Explanation of Solution

Calculation:

Consider the general expression for time period.

T=1f

Substitute 50Hz for f as follows.

T=150Hz=0.02s=20ms

Conclusion:

Thus, the value of period in milliseconds is 20ms_.

g.

To determine

Find the value of first time that obtained after t=0 that v=40V.

g.

Expert Solution
Check Mark

Answer to Problem 1P

The value of first time that obtained after t=0 that v=40V is 6.67ms_.

Explanation of Solution

Calculation:

Substitute 40V for v in equation (1) as follows.

40=40cos(100πt+60°)4040=cos(100πt+60°)cos1(1)=(100πt+60°)π=(100πt+60°)

Simplify the equation as follows.

100πt=π60°t=180°60°100(180°) {π=180°}t=120°100(180°)t=6.67ms

Conclusion:

Thus, the value of first time that obtained after t=0 that v=40V is 6.67ms_.

h.

To determine

Find the expression of v(t), when the sinusoidal function is shifted 10/3ms right.

h.

Expert Solution
Check Mark

Answer to Problem 1P

The expression of v(t), when the sinusoidal function is shifted 10/3ms right is 40cos100πtV_.

Explanation of Solution

Calculation:

As the sinusoidal function is shifted 10/3ms right, modify equation (1) as follows.

v(t)=40cos(100π(t0.013)+60°)=40cos(100π(t0.013)+π3) {π3=60°}=40cos(100πtπ3+π3)=40cos100πt V

Conclusion:

Thus, the expression of v(t), when the sinusoidal function is shifted 10/3ms right is 40cos100πtV_.

i.

To determine

Find the minimum number of milliseconds taken by a function to shift towards left, when 40sin100πtVis used as v(t).

i.

Expert Solution
Check Mark

Answer to Problem 1P

The minimum number of milliseconds taken by a function to shift towards left, when 40sin100πtVis used as v(t) is 11.67ms_.

Explanation of Solution

Calculation:

Substitute 40sin100πtV for v(t) in equation (1) and modify the equation as follows.

40sin100πt=40cos(100π(t+to)+60°)cos(100πtπ2)=cos(100π(t+to)+π3) {π3=60°}100πt+3π2=100π(t+to)+π3100πt+3π2=100πt+100πto+π3

Simplify the equation as follows.

3π2=100πto+π3100πto=3π2π3100πto=9π2π6100πto=7π6

Rearrange the equation as follows.

to=7π6(100π)=11.66ms

Conclusion:

Thus, the minimum number of milliseconds taken by a function to shift towards left, when 40sin100πtVis used as v(t) is 11.67ms_.

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Chapter 9 Solutions

Electric Circuits, Student Value Edition Format: Unbound (saleable)

Ch. 9.8 - Use the node-voltage method to find the...Ch. 9.9 - Use the mesh-current method to find the phasor...Ch. 9.10 - Prob. 14APCh. 9.11 - The source voltage in the phasor domain circuit in...Ch. 9 - Prob. 1PCh. 9 - A sinusoidal voltage is given by the...Ch. 9 - Prob. 3PCh. 9 - Prob. 4PCh. 9 - Prob. 5PCh. 9 - Prob. 6PCh. 9 - Prob. 7PCh. 9 - Find the rms value of the half-wave rectified...Ch. 9 - Verify that Eq. 9.7 is the solution of Eq. 9.6....Ch. 9 - Prob. 10PCh. 9 - Use the concept of the phasor to combine the...Ch. 9 - The expressions for the steady-state voltage and...Ch. 9 - Prob. 13PCh. 9 - A 50 kHz sinusoidal voltage has zero phase angle...Ch. 9 - Prob. 15PCh. 9 - A 10 Ω resistor and a 5 μF capacitor are connected...Ch. 9 - Three branches having impedances of , and ,...Ch. 9 - Prob. 18PCh. 9 - Prob. 19PCh. 9 - Show that at a given frequency ω, the circuits in...Ch. 9 - Show that at a given frequency ω, the circuits in...Ch. 9 - Prob. 22PCh. 9 - Prob. 23PCh. 9 - Prob. 24PCh. 9 - Find the admittance Yab in the circuit seen in...Ch. 9 - Find the impedance Zab in the circuit seen in Fig....Ch. 9 - For 1he circuit shown in Fig. P9.27 find the...Ch. 9 - Prob. 28PCh. 9 - Prob. 29PCh. 9 - The circuit in Fig. P9.30 is operating in the...Ch. 9 - Find the steady-state expression for vo in the...Ch. 9 - Prob. 33PCh. 9 - Find the value of Z in the circuit seen in Fig....Ch. 9 - Find Ib and Z in the circuit shown in Fig. P9.35...Ch. 9 - The circuit shown in Fig. P9.36 is operating in...Ch. 9 - The frequency of the sinusoidal voltage source in...Ch. 9 - The frequency of the sinusoidal voltage source in...Ch. 9 - The frequency of the source voltage in the circuit...Ch. 9 - The circuit shown in Fig. P9.40 is operating in...Ch. 9 - The source voltage in the circuit in Fig. P9.41 is...Ch. 9 - Find Zab for the circuit shown in Fig P9.42. Ch. 9 - Use source transformations to find the Thévenin...Ch. 9 - Use source transformations to find the Norton...Ch. 9 - The sinusoidal voltage source in the circuit in...Ch. 9 - Find the Norton equivalent circuit with respect to...Ch. 9 - Prob. 47PCh. 9 - Find the Norton equivalent with respect to...Ch. 9 - Find the Norton equivalent circuit with respect to...Ch. 9 - Find the Thévenin equivalent circuit with respect...Ch. 9 - Prob. 51PCh. 9 - Find Zab in the circuit shown in Fig. P9.52 when...Ch. 9 - The circuit shown in Fig. P9.53 is operating at a...Ch. 9 - PSPICEMULTISIM Use the node-voltage method to find...Ch. 9 - Use the node-voltage method to find V0 in the...Ch. 9 - PSPICEMULTISIM Use the node-voltage method to find...Ch. 9 - Use the node-voltage method to find V0 and I0 in...Ch. 9 - Use the node-voltage method to find the phasor...Ch. 9 - Use the mesh-current method to find the...Ch. 9 - Use the mesh-current method to find the...Ch. 9 - Use the mesh-current method to find the...Ch. 9 - Use the mesh-current method to find the...Ch. 9 - Use the mesh-current method to find the branch...Ch. 9 - Use the mesh-current method to find the...Ch. 9 - Prob. 65PCh. 9 - Prob. 66PCh. 9 - For the circuit in Fig. P9.67, suppose What...Ch. 9 - For the circuit in Fig. P9.68, suppose What...Ch. 9 - The op amp in the circuit in Fig. P9.69 is...Ch. 9 - Prob. 70PCh. 9 - Prob. 71PCh. 9 - Prob. 72PCh. 9 - Prob. 73PCh. 9 - Find the steady-state expressions for the currents...Ch. 9 - Prob. 75PCh. 9 - Prob. 76PCh. 9 - The sinusoidal voltage source in the circuit seen...Ch. 9 - Prob. 78PCh. 9 - Prob. 79PCh. 9 - Prob. 80PCh. 9 - Prob. 81PCh. 9 - Prob. 82PCh. 9 - Prob. 83PCh. 9 - Prob. 84PCh. 9 - Prob. 86PCh. 9 - Prob. 87PCh. 9 - Prob. 88PCh. 9 - Prob. 89PCh. 9 - Prob. 90PCh. 9 - Prob. 91P
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