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14 January, 11:49

A ball player catches a ball 3.13 s after throwing it vertically upward. a) With what speed did he throw it?

b) What height did it reach?

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Answers (1)
  1. 14 January, 15:13
    0
    a) v₀ = 15.3 m/s

    b) h = 11.9 m

    Explanation:

    Ball Kinematics

    We apply the free fall formulas:

    vf = v₀+at Formula (1)

    vf²=v₀²+2*a*y Formula (2)

    y = v₀t + (1/2) * a*t² Formula (3)

    y:displacement in meters (m)

    v₀: initial speed in m/s

    f: final speed in m/s

    a: acceleration in m/s²

    Data

    t = 3.13 s

    a=g = - 9.8 m/s² = acceleration due to gravity

    Problem development

    a) With what speed did he throw it

    t = 3.13 s : total ball time going up and down The time the ball rises to its maximum height is half the total time At maximum height vf = 0

    We apply the formula (1) for calculate initial speed (v₀)

    vf = v₀+at

    0 = v₀ + (-9.8) * (3.13/2)

    v₀ = 15.3 m/s

    b) What height did it reach?

    We apply formula (2) or formula (3)

    vf²=v₀²+2*a*h formula (2)

    0 = v₀² + 2 * (-9.8) * h

    19.6*h = v₀²

    h=v₀²/19.6

    h = (15.3) ² / (19.6)

    h = 11.9m

    y = v₀t + (1/2) * a*t² Formula (3)

    h = (15.3) (3.13/2) + (1/2) (-9.8) (3.13/2) ² = 11.9m
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