EBK FUNDAMENTALS OF APPLIED ELECTROMAGN
7th Edition
ISBN: 8220100663659
Author: ULABY
Publisher: PEARSON
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Textbook Question
Chapter 1, Problem 7P
A wave traveling along a string in the +x direction is given by
y1(x, t) = A cos(ωt − βx),
where x = 0 is the end of the string, which is tied rigidly to a wall, as shown in Fig. P1.7.
Figure P1.7 Wave on a string tied to a wall at x = 0 (Problem 1.7).
When wave y1(x, t) arrives at the wall, a reflected wave y2(x, t) is generated. Hence, at any location on the string, the vertical displacement ys is the sum of the incident and reflected waves:
ys(x, t) = y1(x, t) + y2(x, t).
- (a) Write an expression for y2(x, t), keeping in mind its direction of travel and the fact that the end of the string cannot move.
- (b) Generate plots of y1(x, t), y2(x, t) and ys(x, t) versus x over the range −2λ ≤ x ≤ 0 at ωt = π/4 and at ωt = π/2.
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The wavefunction of a mechanical wave on a string is described by: y(x.t) =
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%3D
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formed, then the length of the string is:
0.5 m
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A standing wave on a string of length L = 3 m is described by the following
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%3D
6.
The graph on the right shows two waves
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D (in mm)
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waves at x = 15 m at time t = 2.0 s?
x (in m)
+
++
a. What will the resulting
displacement of the combined
waves (in mm) at x = 15 m at time
t = 2.0 s?
10
15
25
-1
-2-
3.5 m/s
b. What will the resulting displacement of the combined waves (in mm) at x = 16 m at
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= 4.0 s?
04 15 21
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Chapter 1 Solutions
EBK FUNDAMENTALS OF APPLIED ELECTROMAGN
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Ch. 1.4 - The electric field of a traveling electromagnetic...Ch. 1.4 - Prob. 4ECh. 1.4 - The red wave shown in Fig. E1.5 is given by...Ch. 1.4 - An electromagnetic wave is propagating in the z...Ch. 1.5 - What are the three fundamental properties of EM...Ch. 1.5 - What is the range of frequencies covered by the...Ch. 1.5 - Prob. 11CQCh. 1.6 - Express the following complex functions in polar...Ch. 1.6 - Show that 2j=(1+j). (See EM.)Ch. 1.7 - Prob. 12CQCh. 1.7 - How is the phasor technique used when the forcing...Ch. 1.7 - A series RL circuit is connected to a voltage...Ch. 1.7 - A phasor voltage is given by V=j5V. Find (t).Ch. 1 - A 2 kHz sound wave traveling in the x direction in...Ch. 1 - For the pressure wave described in Example 1-1,...Ch. 1 - A harmonic wave traveling along a string is...Ch. 1 - A wave traveling along a string is given by...Ch. 1 - Two waves, y1(t) and y2(t), have identical...Ch. 1 - The height of an ocean wave is described by the...Ch. 1 - A wave traveling along a string in the +x...Ch. 1 - Two waves on a string are given by the following...Ch. 1 - Give expressions for y(x, t) for a sinusoidal wave...Ch. 1 - An oscillator that generates a sinusoidal wave on...Ch. 1 - Prob. 11PCh. 1 - Given two waves characterized by...Ch. 1 - The voltage of an electromagnetic wave traveling...Ch. 1 - A certain electromagnetic wave traveling in...Ch. 1 - Prob. 15PCh. 1 - Prob. 16PCh. 1 - Complex numbers z1 and z2 are given z1=3j2z2=4+j3...Ch. 1 - Complex numbers z1 and z2 are given by...Ch. 1 - If z=2+j4, determine the following quantities in...Ch. 1 - Find complex numbers t=z1+z2 and s=z1z2, both in...Ch. 1 - Complex numbers z1 and z2 are given by...Ch. 1 - If z=3j5, find the value of ln(z).Ch. 1 - If z = 3 j4. find the value of ez.Ch. 1 - Prob. 24PCh. 1 - A voltage source given by s(t)=25cos(2103t30)(V)...Ch. 1 - Find the phasors of the following time functions:...Ch. 1 - Find the instantaneous time sinusoidal functions...Ch. 1 - A series RLC circuit is connected to a generator...Ch. 1 - The voltage source of the circuit shown in Fig....
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