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10 July, 00:02

A Ferris wheel is a vertical, circular amusement ride with radius 6.0 m. Riders sit on seats that swivel to remain horizontal. The Ferris wheel rotates at a constant rate, going around once in 9.6 s. Consider a rider whose mass is 96 kg.

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  1. 10 July, 02:38
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    Incomplete question

    The complete question is

    A Ferris wheel is a vertical, circular amusement ride with radius 6.0 m. Riders sit on seats that swivel to remain horizontal. The Ferris wheel rotates at a constant rate, going around once in 9.6 s. Consider a rider whose mass is 96 kg.

    At the bottom of the ride, what is the rate of change of the rider's momentum?

    Explanation:

    Radius of wheel is 6m

    Rider mass=96kg

    He completes one revolution in 9.6s

    Let get angular velocity (w)

    1 Revolution = 2πrad

    θ=2πrad

    w = θ/t

    w=2π/9.6

    w=0.654rad/s

    Linear speed is give as

    v=wr

    v=0.654*6

    v=3.93m/s

    Centripetal acceleration a

    a=rw²

    a=6*0.654²

    a=2.57m/s²

    Acceleration due to gravity g=9.81m/s²

    According to Newton's second law of motion net force acting on the rider at the bottom of the ride is given by: the two force acting at the bottom is the normal and the weight of the rider

    ΣF = ma

    N-W=ma

    N-mg=ma

    N=ma+mg

    N=m (a+g)

    N=96 (2.57+9.81)

    N=1188.48 N

    Therefore the rate of change of momentum at the bottom of the ride is 1188.48 N.
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