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A 0.2-kg steel ball is dropped straight down onto a hard, horizontal floor and bounces straight up. The ball's speed just before and just after impact with the floor is 10 m/s. Determine the magnitude of the impulse delivered to the floor by the steel ball.

Respuesta :

Answer:

Explanation:

Given

mass of steel ball [tex]m=0.2\ kg[/tex]

initial speed of ball [tex]u=10\ m/s[/tex]

Final speed of ball [tex]v=-10\ m/s[/tex] (in upward direction)

Impulse imparted is given by change in the momentum of object

therefore impulse J is given by

[tex]J=\Delta P[/tex]

[tex]\Delta P=m(v-u)[/tex]

[tex]\Delta P=0.2(-10-10)[/tex]

[tex]\Delta =-4\ N-s[/tex]

so magnitude of Impulse =4 N-s

Answer:

4 N s

Explanation:

mass, m = 0.2 kg

initial velocity, u = - 10 m/s (downward )

final velocity, v = + 10 m/s (upwards)

Impulse is defined a the change in momentum .

Impulse = m ( v - u)

Impulse = 0.2 ( 10 + 10)

Impulse = 4 N s

thus, the impulse is 4 N s .

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