Ask Question
8 January, 09:14

A 63.0-kg man is riding an escalator in a shopping mall. The escalator moves the man at a constant velocity from ground level to the floor above, a vertical height of 4.20 m. What is the work done on the man by (a) the gravitational force and (b) the escalator

+5
Answers (1)
  1. 8 January, 12:23
    0
    Given that,

    Mass of man = Mm=63kg

    W=mg

    W=63*9.81

    W=618.03N

    g=9.81m/s²

    The escalator moves at a constant velocity, then this shows that it is not accelerating, then, a=0m/s²

    Height escalator traveled

    H=4.2m.

    We assume that the weight of the escalator is negligible.

    a. Work done by gravity

    Work done by gravity is given as

    Work done (gravity) = mgh

    Since the work is done against gravity, then, g is negative

    Then,

    Work done (gravity) = -mgh

    Work done (gravity) = -63*9.81*4.2

    Work done (gravity) = -2595.726J

    b. Work done by escalator

    Using equation of motion to know the force pulling the escalator upward

    ΣF = ma, but a=0

    ΣF = 0

    Only two force is acting on the in y axis, the Normal force and the weight

    N-W=0

    N=W

    Since W=618.03N

    Then, N=618.03

    The normal is the force pulling the escalator upward

    Then, the work done by escalator is given as

    Work done=Force * distance

    Work done=618.03*4.2

    Work done = 2595.76J

    Work done by escalator is 2595.76J
Know the Answer?
Not Sure About the Answer?
Find an answer to your question ✅ “A 63.0-kg man is riding an escalator in a shopping mall. The escalator moves the man at a constant velocity from ground level to the floor ...” in 📘 Physics if you're in doubt about the correctness of the answers or there's no answer, then try to use the smart search and find answers to the similar questions.
Search for Other Answers