Loose Leaf for Engineering Circuit Analysis Format: Loose-leaf
Loose Leaf for Engineering Circuit Analysis Format: Loose-leaf
9th Edition
ISBN: 9781259989452
Author: Hayt
Publisher: Mcgraw Hill Publishers
bartleby

Concept explainers

bartleby

Videos

Question
Book Icon
Chapter 10, Problem 30E

(a)

To determine

Find the instantaneous voltage of 965°V at t=10ms and t=25ms.

(a)

Expert Solution
Check Mark

Answer to Problem 30E

The instantaneous voltage of 965°V at t=10ms and t=25ms are 3.816Vand8.136V_, respectively.

Explanation of Solution

Given data:

965°V        (1)

f=50Hz

Formula used:

Consider the Euler’s identity,

ejθ=cosθ+jsinθ

Consider the general expression for voltage response.

v(t)=Vmcos(ωt+ϕ)

The complex form of voltage response is, v(t)=Vmϕ.

Calculation:

Consider the general expression for frequency in terms of rad/s.

ω=2πf

Substitute 50Hz for f as follows.

ω=2π(50)=314.15314rad/s

The cosine function of phasor expression 965°V is,

v(t)=9cos(314t+65°)V        (2)

Substitute 10ms for t in equation (2) as follows.

v(10ms)=9cos[314(10ms)+65°]=9cos[314(10×103)+65°] {1m=1×103}=9cos[3.14+65°]=9cos[3.14(180π)+65°]

Simplify the equation as follows.

v(10ms)=9cos[179.9°+65°]=9cos[244.9°]=9(0.424)=3.816V

Substitute 25ms for t in equation (2) as follows.

v(25ms)=9cos[314(25ms)+65°]=9cos[314(25×103)+65°] {1m=1×103}=9cos[7.85+65°]=9cos[7.85(180π)+65°]

Simplify the equation as follows.

v(25ms)=9cos[449.7°+65°]=9cos[514.7°]=9(0.904)=8.136V

Conclusion:

Thus, the instantaneous voltage of 965°V at t=10ms and t=25ms are 3.816Vand8.136V_, respectively.

(b)

To determine

Find the instantaneous voltage of 231°425°A at t=10ms and t=25ms.

(b)

Expert Solution
Check Mark

Answer to Problem 30E

The instantaneous voltage of 231°425°A at t=10ms and t=25ms are 0.497Aand0.0495A_, respectively.

Explanation of Solution

Given data:

231°425°A        (3)

Calculation:

Simplify equation (2) in single complex form.

i=231°425°=0.56°

The cosine function of phasor expression 0.56°A is,

i(t)=0.5cos(314t+6°)A        (4)

Substitute 10ms for t in equation (4) as follows.

v(10ms)=0.5cos[314(10ms)+6°]=0.5cos[314(10×103)+6°] {1m=1×103}=0.5cos[3.14+6°]=0.5cos[3.14(180π)+6°]

Simplify the equation as follows.

v(10ms)=0.5cos[179.9°+6°]=0.5cos[185.9°]=0.5(0.994)=0.497A

Substitute 25ms for t in equation (4) as follows.

v(25ms)=0.5cos[314(25ms)+6°]=0.5cos[314(25×103)+6°] {1m=1×103}=0.5cos[7.85+6°]=0.5cos[7.85(180π)+6°]

Simplify the equation as follows.

v(25ms)=0.5cos[449.7°+6°]=0.5cos[455.7°]=0.5(0.099)=0.0495A

Conclusion:

Thus, the instantaneous voltage of 231°425°A at t=10ms and t=25ms are 0.497Aand0.0495A_, respectively.

(c)

To determine

Find the instantaneous voltage of 2214°833°V at t=10ms and t=25ms.

(c)

Expert Solution
Check Mark

Answer to Problem 30E

The instantaneous voltage of 2214°833°V at t=10ms and t=25ms are 14.61Vand0.879V_, respectively.

Explanation of Solution

Given data:

2214°833°V        (5)

Calculation:

Simplify equation (5) in single complex form.

v=2214°833°V=14.663.77°V

The cosine function of phasor expression 14.663.77°V is,

v(t)=14.66cos(314t+3.77°)V        (6)

Substitute 10ms for t in equation (6) as follows.

v(10ms)=14.66cos[314(10ms)+3.77°]=14.66cos[314(10×103)+3.77°] {1m=1×103}=14.66cos[3.14+3.77°]=14.66cos[3.14(180π)+3.77°]

Simplify the equation as follows.

v(10ms)=14.66cos[179.9°+3.77°]=14.66cos(183.67°)=14.66(0.997)=14.61V

Substitute 25ms for t in equation (6) as follows.

v(25ms)=14.66cos[314(25ms)+3.77°]=14.66cos[314(25×103)+3.77°] {1m=1×103}=14.66cos[7.85+3.77°]=14.66cos[7.85(180π)+3.77°]

Simplify the equation as follows.

v(25ms)=14.66cos[449.7°+3.77°]=14.66cos[453.47°]=14.66(0.06)=0.879V

Conclusion:

Thus, the instantaneous voltage of 2214°833°V at t=10ms and t=25ms are 14.61Vand0.879V_, respectively.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
The voltage represented by e = 240 Sin(377t) volts is connected across a 20 ohms resistor. The RMS current indicated by a modern DMM (digital multi-meter) is ... a) 24 A O b) 8.49 A O c) 12 A O d) 6 A
An alternating current is represented by the equation: i(t) = 150sin 628t Calculate; 1.The frequency, 2.The period, 3.The ratio of the rms value to the average value, 4. The time taken from t 0 with the function rising positively to reach a magnitude of + 100 A for the second and fifth time 5. The time taken from t = 0 with the function rising positively to reach a magnitude of - 100 A for the first time
A sinusoidal alternating voltage of effective value of 250 V and a frequency of 60 hz. It crosses the zero axis in a positive direction when t=0. Determine a) the instantaneous value of voltage after 12.45 msec; b) the time taken to reach 275 V after a period; c) the time to reach a value of 300 V after a passing through maximum positive value.

Chapter 10 Solutions

Loose Leaf for Engineering Circuit Analysis Format: Loose-leaf

Ch. 10.5 - Determine the admittance (in rectangular form) of...Ch. 10.6 - Use nodal analysis on the circuit of Fig. 10.23 to...Ch. 10.6 - Use mesh analysis on the circuit of Fig. 10.25 to...Ch. 10.7 - If superposition is used on the circuit of Fig....Ch. 10.7 - Prob. 15PCh. 10.7 - Determine the current i through the 4 resistor of...Ch. 10.8 - Select some convenient reference value for IC in...Ch. 10 - Evaluate the following: (a) 5 sin (5t 9) at t =...Ch. 10 - (a) Express each of the following as a single...Ch. 10 - Prob. 3ECh. 10 - Prob. 4ECh. 10 - Prob. 5ECh. 10 - Calculate the first three instants in time (t 0)...Ch. 10 - (a) Determine the first two instants in time (t ...Ch. 10 - The concept of Fourier series is a powerful means...Ch. 10 - Household electrical voltages are typically quoted...Ch. 10 - Prob. 10ECh. 10 - Assuming there are no longer any transients...Ch. 10 - Calculate the power dissipated in the 2 resistor...Ch. 10 - Prob. 13ECh. 10 - Prob. 14ECh. 10 - Prob. 15ECh. 10 - Express the following complex numbers in...Ch. 10 - Prob. 17ECh. 10 - Prob. 18ECh. 10 - Evaluate the following, and express your answer in...Ch. 10 - Perform the indicated operations, and express the...Ch. 10 - Insert an appropriate complex source into the...Ch. 10 - For the circuit of Fig. 10.51, if is = 2 cos 5t A,...Ch. 10 - In the circuit depicted in Fig. 10.51, if is is...Ch. 10 - Employ a suitable complex source to determine the...Ch. 10 - Transform each of the following into phasor form:...Ch. 10 - Prob. 26ECh. 10 - Prob. 27ECh. 10 - The following complex voltages are written in a...Ch. 10 - Assuming an operating frequency of 50 Hz, compute...Ch. 10 - Prob. 30ECh. 10 - Prob. 31ECh. 10 - Prob. 32ECh. 10 - Assuming the passive sign convention and an...Ch. 10 - The circuit of Fig. 10.53 is shown represented in...Ch. 10 - (a) Obtain an expression for the equivalent...Ch. 10 - Determine the equivalent impedance of the...Ch. 10 - (a) Obtain an expression for the equivalent...Ch. 10 - Determine the equivalent admittance of the...Ch. 10 - Prob. 40ECh. 10 - Prob. 41ECh. 10 - Find V in Fig. 10.55 if the box contains (a) 3 in...Ch. 10 - Prob. 43ECh. 10 - Prob. 44ECh. 10 - Design a suitable combination of resistors,...Ch. 10 - Design a suitable combination of resistors,...Ch. 10 - For the circuit depicted in Fig. 10.58, (a) redraw...Ch. 10 - For the circuit illustrated in Fig. 10.59, (a)...Ch. 10 - Referring to the circuit of Fig. 10.59, employ...Ch. 10 - In the phasor-domain circuit represented by Fig....Ch. 10 - With regard to the two-mesh phasor-domain circuit...Ch. 10 - Employ phasor analysis techniques to obtain...Ch. 10 - Determine IB in the circuit of Fig. 10.62 if and ....Ch. 10 - Determine V2 in the circuit of Fig. 10.62 if and ....Ch. 10 - Employ phasor analysis to obtain an expression for...Ch. 10 - Determine the current ix in the circuit of Fig....Ch. 10 - Obtain an expression for each of the four...Ch. 10 - Determine the nodal voltages for the circuit of...Ch. 10 - Prob. 59ECh. 10 - Obtain an expression for each of the four mesh...Ch. 10 - Determine the individual contribution each current...Ch. 10 - Determine V1 and V2 in Fig. 10.68 if I1 = 333 mA...Ch. 10 - Prob. 63ECh. 10 - Obtain the Thvenin equivalent seen by the (2 j) ...Ch. 10 - The (2 j) impedance in the circuit of Fig. 10.69...Ch. 10 - With regard to the circuit depicted in Fig. 10.70,...Ch. 10 - Prob. 67ECh. 10 - Determine the individual contribution of each...Ch. 10 - Determine the power dissipated by the 1 resistor...Ch. 10 - The source Is in the circuit of Fig. 10.75 is...Ch. 10 - Prob. 72ECh. 10 - (a) Calculate values for IL, IR, IC, VL, VR, and...Ch. 10 - In the circuit of Fig. 10.77, (a) find values for...Ch. 10 - The voltage source Vs in Fig. 10.78 is chosen such...Ch. 10 - For the circuit shown in Fig. 10.79, (a) draw the...Ch. 10 - For the circuit shown in Fig. 10.80, (a) draw the...Ch. 10 - (a) Replace the inductor in the circuit of Fig....Ch. 10 - Design a purely passive network (containing only...
Knowledge Booster
Background pattern image
Electrical Engineering
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, electrical-engineering and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Introductory Circuit Analysis (13th Edition)
Electrical Engineering
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:PEARSON
Text book image
Delmar's Standard Textbook Of Electricity
Electrical Engineering
ISBN:9781337900348
Author:Stephen L. Herman
Publisher:Cengage Learning
Text book image
Programmable Logic Controllers
Electrical Engineering
ISBN:9780073373843
Author:Frank D. Petruzella
Publisher:McGraw-Hill Education
Text book image
Fundamentals of Electric Circuits
Electrical Engineering
ISBN:9780078028229
Author:Charles K Alexander, Matthew Sadiku
Publisher:McGraw-Hill Education
Text book image
Electric Circuits. (11th Edition)
Electrical Engineering
ISBN:9780134746968
Author:James W. Nilsson, Susan Riedel
Publisher:PEARSON
Text book image
Engineering Electromagnetics
Electrical Engineering
ISBN:9780078028151
Author:Hayt, William H. (william Hart), Jr, BUCK, John A.
Publisher:Mcgraw-hill Education,
How does an Antenna work? | ICT #4; Author: Lesics;https://www.youtube.com/watch?v=ZaXm6wau-jc;License: Standard Youtube License