The current in a 150 H inductor is known to be iL = 25te- A for t 0.a) Find the voltage across the inductor for t > 0(Assume the passive sign convention.) b) Find the power (in microwatts) at the terminals of the inductor when t=5 ms c) Is the inductor absorbing or delivering power at 5 ms? d) Find the energy (in microjoules) stored in the inductor at 5 ms. e) Find the maximum energy (in microjoules) stored in the inductor and the time (in milliseconds) when it occurs.
Read moreTable of Contents
1
Circuit Variables
2
Circuit Elements
3
Simple Resistive Circuits
4
Techniques of Circuit Analysis
5
The Operational Amplifier
6
Inductance, Capacitance and Mutual Inductance
7
Response of First-Order RL and RC Circuits
8
Natural and Step Responses of RLC Circuits
9
Sinusoidal Steady-State Analysis
10
Sinusoidal Steady-State Power Calculations
11
Balanced Three-Phase Circuits
12
Introduction to the Laplace Transform
13
The Laplace Transform in Circuit Analysis
14
Introduction to Frequency Selective Circuits
15
Active Filter Circuits
16
Fourier Series
17
The Fourier Transform
18
Two-Port Circuits
Textbook Solutions for Electric Circuits
Chapter 6 Problem 6.23
Question
Use realistic inductor values from Appendix H to construct series and parallel combinations of inductors to yield the equivalent inductances specified below.Try to minimize the number of inductors used. Assume that no initial energy is stored in any of the inductors.a) 8 mH) b)45 H c)180 H
Solution
Step 1 of 6
(a)
Using appendix H, equivalent inductances of is achieved by using the two
inductors in parallel combination and three
in the series combination.
The circuit diagram is shown as:
The formula for the equivalent inductance in series combination is given as:
For ,
and
in equation (1).
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full solution
full solution
Title
Electric Circuits 10
Author
James W Nilsson
ISBN
9780133594812