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18 October, 13:43

A student uses an audio oscillator of adjustable frequency to measure the depth of a water well. Two successive resonant frequencies are heard at 187 Hz and 209 Hz. What is the depth of the well? The speed of sound in air is 344 m/s.

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  1. 18 October, 13:45
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    7.8m

    Explanation:

    Given

    frequency f1 = 187Hz

    frequency f2 = 209Hz

    speed of sound in air 'v'=343m/s

    lets assume a cylindrical well and consider 'L ' be the depth

    L = nv/4f (where n=1,3,5, ...)

    Since two successive resonant frequencies are heard, so n2=n1+2.

    lets determine the value of n1 & n2 first

    L1 = L2

    n1 x v/4f1 = n2 x v/4f2 - --> (cancelling out the common)

    n1 x f2 = n2 x f1

    =>n1 x f2 = (n1+2) f1

    =>n1 (f2-f1) = 2 f1

    =>n1 = 2f1 / (f2-f1) = 2 (187) / (209-187) = 17

    therefore, n2 = n1+2 = > 17+2 = > 19

    next is to find 'L'

    L = nv/4f

    L = (17) x (344) / 4 x (187) = 15.88 m

    L = 7.8m

    Therefore, the depth of the well is 7.8m
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