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Question

The sound level at a point 5.0m away from a point source is 40dB. What will be the level at a point 50m away from the source?


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Solution

Step 1. Given data:

(rA)=5m;(rB)=50m;(βA)=40dB

βA is the sound level at A

rA is the distance from the point A

rB is the distance from the point B

Step 2: Formula used,

Sound level, β=10log10(llo) (equation i)

I is the intensity of sound.

Sound level at A, βA=10log10(lAlo)

Sound level at B, βB=10log10(lBlo)

I is the intensity of sound from the point source

IA is the intensity of sound at the point A

IB is the intensity of sound at the point B

Step 3: The sound level at points A and B

As per the given statement,

βA=10log10(lAlo) (equation ii)

from equation (i) and equation (ii), we get:

lAIo=10βA10 equation a

Again,

βB=10log10(lBlo) equation iii)

lBIo=10βB10 (equation b)

Step 4: Dividing the equation a and b

From (a) and (b)

IAIB=10βA-βB10 (equation c)

Step 5: Relating the intensities of sound at points A and B with the distance

IAIB=rBrA2=5052=100

IAIB=100 (equation iv)

Step 6: calculating the sound level at point B

From equations (c) and (iv),

IAIB=10βA-βB10=10010βA-βB10=102βA-βB10=2βA-βB=2040-βB=20βB=40-20=20

Therefore, the sound level of a point 50m away from the point source is 20dB.


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