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2 March, 15:50

Two stones are thrown vertically upward from the ground, one with three times the initial speed of the other. Assume free fall.

Part A:

If the faster stone takes 8.00 s to return to the ground, how long will it take the slower

stone to return? t = ?

Part B:

If the slower stone reaches a maximum height of H, how high (in terms of H) will the faster stone go?

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Answers (1)
  1. 2 March, 16:04
    0
    A) Vf = Vo - g*t

    Vf = 0

    g = 9.8 m/s^2

    Vo = g * t = > t up = Vo / g

    t total = 2*t = 2*Vo / g

    t slow = 2*Vo / g

    t fast = 2*[3Vo] / g = 6Vo / g = > Vo = g * t fast / 6 = 9.8 m/s^2 * 8.00 s / 6 = 13.07 m/s = Vo

    t slow = 2 * 13.07 m/s / 9.8 m/s^2 = 2.67 s.

    B)

    Vf ^2 = Vo ^2 - 2gy

    Vf = 0 = > Vo ^2 = 2gy

    Vo ^2 = 2gH

    [3Vo]^2 = 2gy

    => [3Vo]^2 / Vo^2 = 2gy / 2gH

    => 9 = y/H = > y = 9H
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