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A 3.9 kg ball traveling towards a soccer player at a velocity of -3.5 m/s rebounds off the soccer player's foot at a velocity of +15.9 m/s. If the Force of contact between the ball and the player's foot was 25.9 N. For how long was the force applied?

Respuesta :

Answer: 2.92 s

Explanation:

Given

Mass of ball is [tex]m=3.9\ kg[/tex]

The initial velocity of the ball is [tex]u=-3.5\ m/s[/tex]

Velocity after the rebound is [tex]v=15.9\ m/s[/tex]

Force during the contact is [tex]F=25.9\ N[/tex]

We know, change in momentum is Impulse

[tex]\Rightarrow F\cdot \Delta t=m(\Delta v)[/tex]

[tex]\Rightarrow 25.9\cdot \Delta t=3.9(15.9-(-3.5))\\\\\Rightarrow \Delta t=\dfrac{3.9\times 19.4}{25.9}=2.92\ s[/tex]

Thus, the force is applied for 2.92 s

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