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Katelyn (55 kg) is practicing a drop jump in the biomechanics lab. She steps off a plyometrics box, lands on the force plate, and immediately jumps back up into the air. Right before she hits the force plate, her vertical velocity is 3.0 m/s downwards. After leaving the ground again, her vertical velocity is 3.5 m/s upwards. Katelyn was in contact with the ground for 0.4 seconds. (a) What was the impulse exerted on Katelyn when she was on the force plate

User AdamHurwitz
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1 Answer

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20 votes

Answer:

J = 357.5 kg*m/s

Step-by-step explanation:

  • The impulse exerted on Katelyn when she was on the force plate, is equal to the change in her momentum, according to Newton's 2nd Law.
  • Assuming as the positive direction the upward direction (coincident with the positive y-axis) we can express the initial momentum as follows:


p_(o) = m*v_(o) = 55 kg * (-3.0 m/s) (1)

  • By the same token, the final momentum is as follows:


p_(f) = m*v_(f) = 55 kg * (3.5 m/s) (2)

  • As we have already said, the impulse J is just equal to the change in momentum, i.e., the difference between (2) and (1):


J = p_(f) - p_(o) = m* (v_(f) -v_(o)) = 55 kg* (3.5m/s- (-3.0m/s)) = 357.5 kg*m/s (3)

User Kah Tang
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