EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
9th Edition
ISBN: 9780100454897
Author: Jewett
Publisher: YUZU
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Chapter 18, Problem 18.1OQ

In figure OQ18.1 (page 566), a sound wave of wave-lenght 0.8 m divides into two equal parts that recombine to interfere constructively, with the original difference between their path lengths being |r2 – r1| = 0.8 m. Rank the following situations according to the intensity of sound at the receiver from the highest to the lowest. Assume the tube walls absorb no sound energy. Give equal ranks to situations in which the intensity is equal.

Chapter 18, Problem 18.1OQ, In figure OQ18.1 (page 566), a sound wave of wave-lenght 0.8 m divides into two equal parts that

(a) From its original position, the sliding section is moved out by 0.1 m. (b) Next it slides out an additional 0.1 m. (c) It slides out still another 0.1 m. (d) It slides out 0.1 m more.

Expert Solution & Answer
Check Mark
To determine

The ranking of the situations according to the intensity of sound at the receiver in descending order.

Answer to Problem 18.1OQ

The ranking of the situations according to the intensity of sound at the receiver in descending order is d>a=c>b .

Explanation of Solution

Given info: The wavelength of the sound wave is λ=0.8m and the difference in the paths is |r2r1|=0.8m .

Write the expression for the intensity heard by the receiver.

I=I0cos2ϕ2 . (1)

Here,

ϕ is the phase difference.

I is the intensity heard by the receiver.

I0 is the initial intensity.

For Case (a);

The section is moved out by 0.1m , then the path length r2 is increased by 0.2m

The path length r2 is increased so, the path difference is,

|r2r1|=0.8m+0.2m=1m

Thus, the value of |r2r1| is 1m .

Write the expression for phase difference,

ϕ=(2πλ)(r2r1)

Substitute 1m for (r2r1) and 0.8m for λ in above equation.

ϕ=(2π0.8m)(1m)=2.5π

Thus, the value of ϕ is 2.5π .

Substitute 2.5π for ϕ and Ia for I in equation (1)

Ia=I0cos22.5π2=I02

Thus the value of Ia is I02 .

For Case (b);

The section is again moved out by 0.1m , then the path length r2 is increased by 0.2m

The path length r2 is increased so, the path difference is,

|r2r1|=1m+0.2m=1.2m

Thus, the value of |r2r1| is 1.2m .

Write the expression for phase difference,

ϕ=(2πλ)(r2r1)

Substitute 1.2m for (r2r1) and 0.8m for λ in above equation.

ϕ=(2π0.8m)(1.2m)=3π

Thus, the value of ϕ is 3π .

Substitute 3π for ϕ and Ib for I in equation (1)

Ib=I0cos23π2=0

Thus the value of Ib is 0 .

For Case (c);

The section is again moved out by 0.1m , then the path length r2 is increased by 0.2m

The path length r2 is increased so, the path difference is,

|r2r1|=1.2m+0.2m(r2r1)=1.4m

Thus, the value of |r2r1| is 1.4m .

Write the expression for phase difference,

ϕ=(2πλ)(r2r1)

Substitute 1.4m for (r2r1) and 0.8m for λ in above equation.

ϕ=(2π0.8m)(1.4m)=3.5π

Thus, the value of ϕ is 3.5π .

Substitute 3.5π for ϕ and Ic for I in equation (1)

Ic=I0cos23.5π2=I02

Thus, the value of Ic is I02 .

For Case (d);

The section is again moved out by 0.1m , then the path length r2 is increased by 0.2m

The path length r2 is increased so, the path difference is,

|r2r1|=1.4m+0.2m=1.6m

Thus, the value of (r2r1) is 1.6m .

Write the expression for phase difference,

ϕ=(2πλ)(r2r1)

Substitute 1.6m for (r2r1) and 0.8m for λ in above equation.

ϕ=(2π0.8m)(1.6m)=4π

Thus, the value of ϕ is 4π .

Substitute 4π for ϕ and Id for I in equation (1)

Id=I0cos24π2=I0

Thus, the value of Id is I0 .

The ranking of the intensity of each case is,

I0>I02=I02>0Id>Ia=Ic>Ibd>a=c>b

Conclusion:

Therefore, the ranking of the situations according to the intensity of sound at the receiver in descending order is d>a=c>b .

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Chapter 18 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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