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21 February, 00:02

A 3.0-kg mass and a 5.0-kg mass hang vertically at the opposite ends of a very light rope that goes over an ideal pulley. If the masses are gently released, what is the resulting acceleration of the masses

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  1. 21 February, 00:12
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    acceleration = 2.4525‬ m/s²

    Explanation:

    dа ta: Let m1 = 3.0 Kg, m2 = 5.0 Kg, g = 9.81 m/s²

    Tension in the rope = T

    Sol: m2 > m1

    i) for downward motion of m2:

    m2 a = m2 g - T

    5 a = 5 * 9.81 m/s² - T

    ⇒ T = 49.05‬ m/s² - 5 a Eqn (a) ‬

    ii) for upward motion of m1

    m a = T - m1 g

    3 a = T - 3 * 9.8 m/s²

    ⇒ T = 3 a + 29.43‬ m/s² Eqn (b)

    Equating Eqn (a) and (b)

    49.05‬ m/s² - 5 a = T = 3 a + 29.43‬ m/s²

    49.05‬ m/s² - 29.43‬ m/s² = 3 a + 5 a

    19.62 m/s² = 8 a

    ⇒ a = 2.4525‬ m/s²
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