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38 votes
An official major league baseball has a mass of 0.14 kg. A pitcher throws a 40 m/s fastball which is hit by the batter straight back up the middle at a speed of 46 m/s.

a) What is the change in momentum of the ball during the collision with the bat?
b) If this collision occurs during a time of 0.012 seconds, what is the average force exerted by the bat on the ball?

User Paul Hansen
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2 Answers

26 votes
26 votes

Answer:

a. = 12.04 kg*m/s

b. = 1,003.3N

Step-by-step explanation:

The answer above is correct.

User Jack Avante
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29 votes
29 votes

Answer:

(a) The change in momentum is 12.04 kg-m/s

(b) The force exerted by the bat is 1003.33 N

Step-by-step explanation:

Given that,

The mass of a ball, m = 0.14 kg

Initial speed of the ball, u = 40 m/s

Final speed of the ball, v = -46 m/s

(a) The change in momentum of the ball during the collision with the bat is given by :


\Delta p=m(v-u)\\\\=0.14(-46-40)\\\\=-12.04\ kg-m/s

(b) Time for collision, t = 0.012 s

Now the force can be calculated as follows :


F=(\Delta p)/(t)\\\\F=(12.04)/(0.012)\\\\=1003.33\ N

Hence, this is the required solution.

User Bowsie
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