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27 January, 20:11

An 11.0 g bullet is moving to the right with speed 210 m/s when it hits a target and travels an additional 22.6 cm into the target. What are the magnitude (in N) and direction of the stopping force acting on the bullet? Assume the stopping force is constant.

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  1. 27 January, 20:21
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    Stopping force on the bullet is 1073.23 N to the left.

    Explanation:

    Mass of bullet, m = 11.0 g = 0.011 kg

    Initial speed of bullet, u = 210 m/s

    Final speed of bullet, v = 0 m/s

    Displacement of bullet, s = 22.6 cm = 0.226 m

    We have equation of motion v² = u² + 2as

    Substituting

    0² = 210² + 2 x a x 0.226

    a = - 97566.37 m/s²

    We have

    Force, F = Mass x Acceleration

    F = 0.011 x - 97566.37 = - 1073.23 N

    Negative means opposite to the direction of motion of bullet.

    Stopping force on the bullet is 1073.23 N to the left.
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