Physics for Scientists and Engineers with Modern, Revised Hybrid (with Enhanced WebAssign Printed Access Card for Physics, Multi-Term Courses)
Physics for Scientists and Engineers with Modern, Revised Hybrid (with Enhanced WebAssign Printed Access Card for Physics, Multi-Term Courses)
9th Edition
ISBN: 9781305266292
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Chapter 18, Problem 79AP
To determine

The lowest new fundamental frequency.

Expert Solution & Answer
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Answer to Problem 79AP

The lowest new fundamental frequency is 283Hz.

Explanation of Solution

Write the relation between mass and density.

  m=ρV                                                                                                                 (I)

Here, m is the mass of the copper cylinder, ρ is the density of the copper, and V is the volume.

Write the expression for tension in the wire.

  T1=mg                                                                                                                    (II)

Here, T1 is the tension in the steel wire and g is the gravitational acceleration.

Write the expression for buoyant force exerted by water on the copper object

  FB=ρwaternVg                                                                                                         (III)

Here, FB is the buoyant force, ρwater is the density of water, and n is the fraction of the object.

Write the relation between frequency, wavelength and velocity for string

  f1=v1λ                                                                                                                   (IV)

Here, f1 is the fundamental frequency and λ is the fundamental wavelength.

Write the relation between frequency, wavelength and velocity for changed string.

  f2=v2λ                                                                                                                  (V)

Here, f2 is the new fundamental frequency.

Write the expression for speed of wave on the string.

  v1=T1μ                                                                                                               (VI)

Here, v1 is the speed of wave, T1 is the tension in the string, and μ is the linear density.

Write the expression for speed of wave on the new string.

  v2=T2μ                                                                                                           (VII)

Here, v2 is the speed of wave in changed string and T2 is the tension in the new string.

Conclusion:

Substitute equation (I) in equation (II)

  T1=ρVg                                                                                                          (VIII)

The reduced tension of the object, when submerged in water is,

  T2=T1FB

Substitute the equation (III) and (VIII) in above equation.

  T2=ρVgρwaternVg=(ρnρwater)Vg                                                                                            (IX)

Substitute equation (VI) in equation (IV) and equation (VII) in (V).

  f1=1λT1μ

  f2=1λT2μ

Divide the above two equations.

  f2f1=T2T1

Substitute the equation (VIII) and (IX) in above equation and rearrange for f2.

  f2f1=(ρnρwater)VgρVg=(ρnρwater)ρf2=f1(ρnρwater)ρ

Substitute 300Hz for f1, 8.92g/cm3 for ρ, 1 for n and 1.00g/cm3 for ρwater in above equation to find f2.

  f2=(300Hz)[(8.92g/cm3)(1)(1.00g/cm3)](8.92g/cm3)=282.7Hz283Hz

Therefore, the lowest new fundamental frequency is 283Hz.

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Chapter 18 Solutions

Physics for Scientists and Engineers with Modern, Revised Hybrid (with Enhanced WebAssign Printed Access Card for Physics, Multi-Term Courses)

Ch. 18 - Prob. 6OQCh. 18 - Prob. 7OQCh. 18 - Prob. 8OQCh. 18 - Prob. 9OQCh. 18 - Prob. 10OQCh. 18 - Prob. 11OQCh. 18 - Prob. 12OQCh. 18 - Prob. 1CQCh. 18 - Prob. 2CQCh. 18 - Prob. 3CQCh. 18 - Prob. 4CQCh. 18 - Prob. 5CQCh. 18 - Prob. 6CQCh. 18 - Prob. 7CQCh. 18 - Prob. 8CQCh. 18 - Prob. 9CQCh. 18 - Prob. 1PCh. 18 - Prob. 2PCh. 18 - Two waves on one string are described by the wave...Ch. 18 - Prob. 5PCh. 18 - Prob. 6PCh. 18 - Two pulses traveling on the same string are...Ch. 18 - Two identical loudspeakers are placed on a wall...Ch. 18 - Prob. 9PCh. 18 - Why is the following situation impossible? Two...Ch. 18 - Two sinusoidal waves on a string are defined by...Ch. 18 - Prob. 12PCh. 18 - Prob. 13PCh. 18 - Prob. 14PCh. 18 - Prob. 15PCh. 18 - Prob. 16PCh. 18 - Prob. 17PCh. 18 - Prob. 18PCh. 18 - Prob. 19PCh. 18 - Prob. 20PCh. 18 - Prob. 21PCh. 18 - Prob. 22PCh. 18 - Prob. 23PCh. 18 - Prob. 24PCh. 18 - Prob. 25PCh. 18 - A string that is 30.0 cm long and has a mass per...Ch. 18 - Prob. 27PCh. 18 - Prob. 28PCh. 18 - Prob. 29PCh. 18 - Prob. 30PCh. 18 - Prob. 31PCh. 18 - Prob. 32PCh. 18 - Prob. 33PCh. 18 - Prob. 34PCh. 18 - Prob. 35PCh. 18 - Prob. 36PCh. 18 - Prob. 37PCh. 18 - Prob. 38PCh. 18 - Prob. 39PCh. 18 - Prob. 40PCh. 18 - The fundamental frequency of an open organ pipe...Ch. 18 - Prob. 42PCh. 18 - An air column in a glass tube is open at one end...Ch. 18 - Prob. 44PCh. 18 - Prob. 45PCh. 18 - Prob. 46PCh. 18 - Prob. 47PCh. 18 - Prob. 48PCh. 18 - Prob. 49PCh. 18 - Prob. 50PCh. 18 - Prob. 51PCh. 18 - Prob. 52PCh. 18 - Prob. 53PCh. 18 - Prob. 54PCh. 18 - Prob. 55PCh. 18 - Prob. 56PCh. 18 - Prob. 57PCh. 18 - Prob. 58PCh. 18 - Prob. 59PCh. 18 - Prob. 60PCh. 18 - Prob. 61PCh. 18 - Prob. 62APCh. 18 - Prob. 63APCh. 18 - Prob. 64APCh. 18 - Prob. 65APCh. 18 - A 2.00-m-long wire having a mass of 0.100 kg is...Ch. 18 - Prob. 67APCh. 18 - Prob. 68APCh. 18 - Prob. 69APCh. 18 - Review. For the arrangement shown in Figure...Ch. 18 - Prob. 71APCh. 18 - Prob. 72APCh. 18 - Prob. 73APCh. 18 - Prob. 74APCh. 18 - Prob. 75APCh. 18 - Prob. 76APCh. 18 - Prob. 77APCh. 18 - Prob. 78APCh. 18 - Prob. 79APCh. 18 - Prob. 80APCh. 18 - Prob. 81APCh. 18 - Prob. 82APCh. 18 - Prob. 83APCh. 18 - Prob. 84APCh. 18 - Prob. 85APCh. 18 - Prob. 86APCh. 18 - Prob. 87CP
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