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30 July, 06:27

What are (a) the lowest frequency, (b) the second lowest frequency, (c) the third lowest frequency of transverse vibrations on a wire that is 10.0m long, has a mass of 100g, and is stretched under tension of 250 N?

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  1. 30 July, 06:31
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    Answer:f1 = 7.90Hz, f2 = 15.811Hz, f3 = 23.71Hz.

    Explanation: length of string = 10m, mass of string = 100g = 0.1kg, T = 250N

    We need the velocity of sound wave in a string when plucked with a tension T, this is given below as

    v = √T/u

    Where u = mass / length = 0.1 / 10 = 0.01kg/m

    Hence v = √250/0.01, v = √25,000 = 158.11

    a) at the lowest frequency.

    At the lowest frequency, the length of string is related to the wavelength with the formulae below

    L = λ/2, λ = 2L.

    λ = 2 * 10

    λ = 20m.

    But v = fλ where v = 158.11m/s and λ = 20m

    f = v / λ

    f = 158.11 / 20

    f = 7.90Hz.

    b) at the first frequency.

    The length of string and wavelength for this case is

    L = λ.

    Hence λ = 10m

    v = 158.11m/s

    v = fλ

    f = v/λ

    f = 158.11/10

    f = 15.811Hz

    c) at third frequency

    The length of string is related to the wavelength of sound with the formulae below

    L = 3λ/2, hence λ = 2L / 3

    λ = 2 * 10 / 3

    λ = 20/3

    λ = 6.67m

    v = fλ where v = 158.11m/s, λ = 6.67m

    f = v/λ

    f = 158.11/6.67

    f = 23.71Hz.
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