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27 March, 08:46

A 5.0 kg block with a speed of 2.8 m/s collides with a 10 kg block that has a speed of 1.8 m/s in the same direction. After the collision, the 10 kg block is observed to be traveling in the original direction with a speed of 2.3 m/s. What is the velocity of the 5.0 kg block immediately after the collision

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  1. 27 March, 10:13
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    Answer: v1 = 1.8m/s

    The velocity of the 5.0 kg block immediately after the collision is 1.8m/s

    Explanation:

    Applying the law of conservation of momentum;

    Change in momentum of block 1 = change in momentum of block 2

    ∆p1 = ∆p2

    m1 (∆v1) = m2 (∆v2)

    m1 (u1-v1) = m2 (v2-u2) ... 1

    where,

    m1 and m2 are the masses of the 5 kg and 10kg block respectively.

    v1 and v2 are the final speeds of the 5 kg and 10kg block respectively.

    u1 and u2 are the initial speeds of the 5 kg and 10kg block respectively.

    Given;

    m1 = 5 kg

    m2 = 10kg

    u1 = 2.8m/s

    u2 = 1.8m/s

    v1 = ?

    v2 = 2.3 m/s

    Substituting the given values into the equation 1

    5 (2.8-v1) = 10 (2.3-1.8)

    (2.8-v1) = 10 (0.5) / 5

    2.8-v1 = 1

    v1 = 2.8-1 = 1.8

    v1 = 1.8m/s

    Therefore, the velocity of the 5.0 kg block immediately after the collision is 1.8m/s
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