Respuesta :
Answer:
[tex]\Delta p=-1.56\ kg-m/s[/tex]
Explanation:
It is given that,
Mass of the baseball, m = 0.14 kg
It is dropped form a height of 1.8 m above the ground. Let u is the velocity when it hits the ground. Using the conservation of energy as :
[tex]u=\sqrt{2gh}[/tex]
h = 1.8 m
[tex]u=\sqrt{2\times 9.8\times 1.8}[/tex]
u = 5.93 m/s
Let v is the speed of the ball when it rebounds. Again using the conservation of energy to find it :
[tex]v=\sqrt{2gh'}[/tex]
h' = 1.4 m
[tex]v=-\sqrt{2\times 9.8\times 1.4}[/tex]
v = -5.23 m/s
The change in the momentum of the ball is given by :
[tex]\Delta p=m(v-u)[/tex]
[tex]\Delta p=0.14(-5.23-5.93)[/tex]
[tex]\Delta p=-1.56\ kg-m/s[/tex]
So, the change in the ball's momentum occurs when the ball hits the ground is 1.56 kg-m/s. Hence, this is the required solution.
