Impulse & Momentum: Golf Ball & Club Force Calcs

  • Thread starter Thread starter elimenohpee
  • Start date Start date
  • Tags Tags
    Impulse Momentum
Join the discussion
Ask a follow-up here, or get your own question answered by working scientists, mathematicians and engineers — people, not an autocomplete.
Real named experts · corrections over time · the nuance an AI answer skips
1 replies · 4K views
elimenohpee
Messages
64
Reaction score
0

Homework Statement




A golfer hits a golf ball of mass 0.045 kg the ball over some short trees. He hits the ball at
an angle of 60(degrees) to the horizontal and it travels a horizontal distance (Range) of 60.0 m in a time of 8.00 s. The golf club of mass 0.60 kg is in contact with the ball for a time of 2.40 ms.
(a) What is the average impulsive force on the golf ball?
(b) What is the average impulsive force on the golf club?
(c) What is the change in momentum of the golf club?

Homework Equations


All my answers are exactly have of what my teacher posted. My answer for (a) should be 280N, (b) should be -280N, and (c) should be -0.67 kg m/s


The Attempt at a Solution


Since the ball is hit at an angle, I split the momentum into x and y components. Initial velocity is zero, so both x1 and y1 are zero.
(a) The final momentum for x would be: mvcos(theta) = (0.045kg)(7.5m/s)(cos(60))= 0.169 kg m/s

The final momentum for y would be: mvsin(theta) = (0.045kg)(7.5m/s)(sin(60))= 0.29 kg m/s
Divide both values by the time the force was in contact (2.5 ms).
So to find the average impulsive force, take both values of momentum divided by time and find the magnitude: [(70.4)^2 + (121)^2]^0.5 = 140 N

(b) it would just be the opposite of the force on the golf ball, -140N
(c) change in momentum would just take the magnitude of the the momentum:
[(0.169)^2 + (0.29)^2]^0.5 = -0.33 kg m/s (negative because its the change in momentum of the golf club not the golf ball)
 
on Phys.org