EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
9th Edition
ISBN: 8220100454899
Author: Jewett
Publisher: Cengage Learning US
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Chapter 18, Problem 18.76AP

A nylon siring has mass 5.50 g and length L = 86.0 cm. The lower end is tied to the floor, and the upper end is tied to a small set of wheels through a slot in a track on which the wheels move (Fig. P18.76). The wheels have a mass that is negligible compared with that of the siring, and they roll without friction on the track so that the upper end of the string is essentially free. Figure P18.76 At equilibrium, the string is vertical and motionless. When it is carrying a small-amplilude wave, you may assume the string is always under uniform tension 1.30 N. (a) Find the speed of transverse waves on the siring, (b) The string's vibration possibilities are a set of standing-wave states, each with a node at the fixed bottom end and an antinode at the free top end. Find the node-antinode distances for each of the three simplest states, (c) Find the frequency of each of these states.

Chapter 18, Problem 18.76AP, A nylon siring has mass 5.50 g and length L = 86.0 cm. The lower end is tied to the floor, and the

(a)

Expert Solution
Check Mark
To determine

The speed of transverse waves on the string.

Answer to Problem 18.76AP

The speed of transverse waves on the string is 14.26m/s .

Explanation of Solution

Given info: The length of the string is 86.0cm , the mass of string is 5.50g and the tension in string is 1.30N .

The linear mass density of the string is,

μ=ml

Here,

m is the mass of string.

l is the length of the string.

Substitute 5.50g for m and 86.0cm for l in above equation.

μ=5.50g(1kg1000g)86.0cm(1m100cm)=6.395×103kg/m

The formula for speed of string is,

v=Tμ

Here,

T is the tension in string.

Substitute 1.30N for T and 6.395×103kg/m for μ in above equation.

v=1.30N6.395×103kg/m=14.26m/s

Conclusion:

Therefore, the speed of transverse waves on the string is 14.26m/s .

(b)

Expert Solution
Check Mark
To determine

The node-antinodes distances for each of the three simplest states.

Answer to Problem 18.76AP

The node-antinodes distances are 0.86m , 0.287m , and 0.172m for the three cases simultaneously.

Explanation of Solution

Given info: The length of the string is 86.0cm , the mass of string is 5.50g and the tension in string is 1.30N .

Consider the first condition in which a node is formed at the fixed bottom and an antinode is at top.

For the above condition, the length of the string is,

l=λ4

Here,

λ is the wavelength.

Rewrite the above equation.

λ=4l

Substitute 86.0cm for l in above equation.

λ=4×86.0cm(1m100cm)=3.44m

The node-antinodes distance is,

d=λ4 . (1)

Substitute 3.44m for λ in above equation.

d1=3.44m4=0.86m

Consider the second condition in which two node is formed and an antinode is at top.

For the above condition, the length of the string is,

l=3λ4

Rewrite the above equation.

λ=4l3

Substitute 86.0cm for l in above equation.

λ=43×86.0cm(1m100cm)=1.1467m

Thus, the wavelength is 1.1467m when two node is formed and an antinode is at top.

Substitute 1.1467m for λ in equation (1).

d2=1.1467m4=0.287m

Consider the third condition in which three node is formed and an antinode is at top.

For the above condition, the length of the string is,

l=5λ4

Rewrite the above equation.

λ=4l3

Substitute 86.0cm for l in above equation.

λ=45×86.0cm(1m100cm)=0.688m

Thus, the wavelength is 0.688m when three node is formed and an antinode is at top.

Substitute 0.688m for λ in equation (1).

d3=0.688m4=0.172m

Conclusion:

Therefore, the node-antinodes distances are 0.86m , 0.287m , and 0.172m for the three cases simultaneously.

(c)

Expert Solution
Check Mark
To determine

The frequency of each conditions in part (b).

Answer to Problem 18.76AP

The frequencies are 4.145Hz , 12.436Hz and 20.7Hz simultaneously.

Explanation of Solution

Given info: The length of the string is 86.0cm , the mass of string is 5.50g and the tension in string is 1.30N .

The formula of frequency is,

f=vλ (2)

Here,

v is the speed of transverse wave in string.

For fist condition:

Substitute 14.26m/s for v and 3.44m for λ in equation (2).

f=14.26m/s3.44m=4.145Hz

For second condition:

Substitute 14.26m/s for v and 1.1467m for λ in equation (2).

f=14.26m/s1.1467m=12.436Hz

For third condition:

Substitute 14.26m/s for v and 0.688m for λ in equation (2).

f=14.26m/s0.688m=20.7Hz

Conclusion:

Therefore, the frequencies are 4.145Hz , 12.436Hz and 20.7Hz simultaneously.

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Chapter 18 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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