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27 August, 13:56

A ball is thrown up at a speed of 20 m/s.

what is the ball's maximum height? using the "big three" equations

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  1. 27 August, 14:06
    0
    Given:

    (Initial velocity) u=20 m/s

    At the maximum height the final velocity of the ball is 0.

    Also since it is a free falling object the acceleration acting on the ball is due to gravity g.

    Thus a = - 9.8 m/s^2

    Now consider the equation

    v^2-u^2 = 2as

    Where v is the final velocity which is measured in m/s

    Where u is the initial velocity which is measured in m/s

    a is the acceleration due to gravity measured in m/s^2

    s is the displacement of the ball in this case it is the maximum height attained by the ball which is measured in m.

    Substituting the given values in the above formula we get

    0 - (20x20) = 2 x - 9.8 x s

    s = 400/19.6 = 20.41m

    Thus the maximum height attained is 20.41 m by the ball
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