Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
15th Edition
ISBN: 9781305289963
Author: Debora M. Katz
Publisher: Cengage Custom Learning
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Chapter 17, Problem 68PQ

(a)

To determine

The wave function for the wave if y(x,t)=4.50 cm at x=0 and t=0 .

(a)

Expert Solution
Check Mark

Answer to Problem 68PQ

The wave function for the wave is y(x,t)=(0.0450)sin(20.0πx+3.00πt+π2) .

Explanation of Solution

It is given that the sinusoidal wave is travelling in the negative direction.

Write the general equation for the sinusoidal wave travelling in negative x direction.

  y(x,t)=ymaxsin(kx+ωt+φ)                                                                                   (I)

Here, y(x,t) is the displacement of wave at any position x and time t, ymax is the amplitude of wave, ω is the angular frequency, k is the angular wavenumber and φ is the initial phase.

Write the expression for k .

  k=2πλ                                                                                                                    (II)

Here, λ is the wavelength.

Write the expression for ω .

  ω=2πf                                                                                                                (III)

Here, f is the frequency of the wave.

Conclusion:

It is given that the amplitude of the wave is 4.50 cm, the wavelength is 10.0 cm and the frequency is 1.50 Hz .

Substitute 10.0 cm for λ in equation (II) to get k .

  k=2π(10.0 cm1 m100 cm)=2π0.100 m=20.0πm1

Substitute 1.50 Hz for f in equation (III) to get ω .

  ω=2π(1.50 Hz)=3.00π rad/s

It is given that the value of the wave function at x=0 and t=0 is 4.50 cm .

Substitute 4.50 cm for y(x,t), 4.50 cm for ymax, 0 for x and 0 for t in equation (I) and rewrite the equation to find the value of φ .

  4.50 cm=(4.50 cm)sin(0+0+φ)sinφ=1φ=sin1(1)=π2

Substitute 4.50 cm for ymax, 20.0πm1 for k, 3.00π rad/s for ω and π2 for φ in equation (I) to find y(x,t) .

  y(x,t)=(4.50 cm1 m100 cm)sin((20.0πm1)x+(3.00π rad/s)t+π2)=(0.0450)sin(20.0πx+3.00πt+π2)

Therefore, the wave function for the wave is y(x,t)=(0.0450)sin(20.0πx+3.00πt+π2) .

(b)

To determine

The wave function for the wave if y(x,t)=4.50 cm at x=5.00 cm and t=0 .

(b)

Expert Solution
Check Mark

Answer to Problem 68PQ

The wave function for the wave if y(x,t)=4.50 cm at x=5.00 cm and t=0 is y(x,t)=(0.0450)sin(20.0πx+3.00πtπ2) .

Explanation of Solution

All quantities of the wave are same as in part (a) except for the phase. Equation (I) can be used to find the wave function.

Conclusion:

Substitute 4.50 cm for y(x,t), 4.50 cm for ymax, 20.0πm1 for k, 5.00 cm for x and 0 for t in equation (I) and rewrite the equation to find the value of φ .

  (4.50 cm1 m100 cm)=(4.50 cm)sin((20.0πm1)(5.00 cm1 m100 cm)+0+φ)0.0450=0.0450sin(20.0(0.0500)π+φ)sin(π+φ)=1π+φ=π2φ=π2

Substitute 4.50 cm for ymax, 20.0πm1 for k, 3.00π rad/s for ω and π2 for φ in equation (I) to find y(x,t) .

  y(x,t)=(4.50 cm1 m100 cm)sin((20.0πm1)x+(3.00π rad/s)tπ2)=(0.0450)sin(20.0πx+3.00πtπ2)

Therefore, the wave function for the wave if y(x,t)=4.50 cm at x=5.00 cm and t=0 is y(x,t)=(0.0450)sin(20.0πx+3.00πtπ2) .

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Chapter 17 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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