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5 January, 00:13

A fish (8 kg) is being yanked vertically upward out of the water and the fishing line breaks. If the line is rated to a maximum tension of 160 N (~ 35 lb test), then what was the minimum acceleration of the fish (in m/s2)

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  1. 5 January, 01:22
    0
    The minimum acceleration of the fish is 10.2 m/s²

    Explanation:

    The force on string is:

    F = 8 * 9.8 = 78.4 N

    According the Newton second law:

    T - W = ma

    Where T = tension of the string = 160 N

    W = weight of the fish = 78.4 N

    m = mass of the fish = 8 kg

    a = acceleration of the fish = ?

    Clearing a:

    a = (T - W) / m = (160 - 78.4) / 8 = 10.2 m/s²
  2. 5 January, 02:21
    0
    Given:

    Mass of the fish, 8 kg

    Tension of the line, F = 160 N

    Tension of the line, F + normal force = 0

    Normal force, Fn = Mass * acceleration

    Acceleration = force/mass

    = 160/8

    = 20 m/s^2

    Minimum acceleration = 20 m/s^2
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