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7 December, 18:13

On a hot summer day, a young girl swings on a rope above the local swimming hole. When she lets go of the rope her initial velocity is 2.25m/s at an angle of 35º above the horizontal. If she is in flight for 1.20s, how high above the water was she when she let go of the rope?

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  1. 7 December, 18:47
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    5.52 m

    Explanation:

    Using the equation;

    Vy = Vo sin θ

    Where; Vo = 2.25 m/s and θ = 35°

    We get;

    = 2.25 sin 35°

    = 1.29 m/s

    Thus; Vy = 1.29 m/s

    But a = - 9.81 m/s (against gravity)

    t = 1.20 s and

    y = Vyt + 1/2 at²

    where y is the height above the water

    = 1.29 * 1.2 + (1/2 * - 9.81 * 1.2²)

    = 1.548 + (-7.0632)

    = - 5.5152 m

    Thus; the height of the girl above the water is 5.52 m
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