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A pipe closed at one end can produce overtones at frequencies 640 Hz, 896 Hz and 1152 Hz. Calculate the fundamental frequency.

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The difference between the given frequencies of the overtones is 256 Hz. This implies that they are consecutive overtones. Let nc be the fundamental frequency of the closed pipe and nq, nq+1, nq+2 = the frequencies of the qth, (q + 1)th and

(q + 2)th consecutive overtones, where q is an integer.

Given : nq = 640 Hz, nq+1 = 896 Hz, nq+2 = 1152 Hz

Since only odd harmonics are present as overtones,

nq = (2q + 1)nc  and nq+1 = [2(q+ 1) + 1] n= (2q +3)nc

∴ \(\frac{n_{q+1}}{n_q}=\frac{2q+3}{2q+1}=\frac{896}{640}=\frac{7}{5}\)

∴ 14q +7 = 10q + 15

∴ 4q = 8, ∴   q=2

Therefore, the three given frequencies correspond to the second, third and fourth overtones, i.e., the fifth, seventh and ninth harmonics, respectively.

∴ 5nc = 640  ∴ nc = 128 Hz

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