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21 October, 06:02

A 25.0-gram bullet enters a 2.25-kg watermelon with a speed of 220 m/s and exits the opposite side with a speed of 110 m/s. If the melon was originally at rest, then what speed will it have as the bullet leaves its opposite side?

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  1. 21 October, 06:06
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    3.67 m/s

    Explanation:

    From the law of conservation of momentum,

    Total momentum before collision = Total momentum after collision.

    mu+m'u' = mv+m'v' ... Equation 1

    Where m = mass of the bullet, m' = mass of the watermelon, u = initial velocity of the bullet, u' = initial velocity of the watermelon, v = final velocity of the bullet, v' = final velocity of the watermelon.

    make v' the subject of the equation,

    v' = (mu+m'u'-mv) / m' ... Equation 2

    Given: m = 25 g = 0.025 kg, u = 220 m/s, m' = 2.25 kg, u' = 0 m/s (at rest), v = 110 m/s.

    Substitute into equation 2

    v' = [ (0.025*220) + (2.25*0) + (0.025*110) ]/2.25

    v' = 3.67 m/s.

    Hence the velocity of the watermelon = 3.67 m/s
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