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4 August, 20:46

A 50kg trunk is pushed 6.0 m at a constant speed up a 30degree

incline by a constant horizontal force. Thecoefficient of kinetic

energy n/between the trunk and the inclineis 0.20. Calculate the

work done by:

a.) the applied force and

b.) by the weight of the trunk.

c.) How much energy was dissipated by the frictional

forceacting on the trunk?

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Answers (1)
  1. 4 August, 20:57
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    a) 2034 J

    b) - 1471 J

    c) - 509 J

    Explanation:

    The trunk has a mass of 50 kg, so its weight is

    f = m * a

    f = 50 * 9.81 = 490 N

    If the incline is of 30 degrees, the force tangential to the incline is:

    ft = f * sin (a)

    ft = 490 * sin (30) = 245 N

    And the normal force is:

    fn = f * cos (a)

    fn = 490 * cos (30) = 424 N

    The frictional force is:

    ff = μ * fn

    ff = 0.2 * 424 = 84.8 N

    To push the trunk up one must apply a force slightly greater than the opposing forces, the opposing are the tangential component of the weight and the friction force

    fp = fn + ff

    fp = 245 + 84.8 = 339 N

    The work of the applied force is:

    L = f * d

    Lp = fp * d

    Lp = 339 * 6 = 2034 J

    The work of the weight is done by the tangential component:

    Lw = - 245 * 6 = - 1471 J (it is negative because the weight was opposed to the direction of movement)

    The work of the friction force is

    Lf = - 84.8 * 6 = - 509 J
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