Solving Collision Problem: Velocity and Force

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A 12 kg block (A) collides with a 20 kg block (B), resulting in block A moving left at 1.6 m/s after the collision. The velocity of block B after the collision is calculated to be 0.72 m/s left using momentum conservation principles. For part b, the average force experienced by block A during the collision can be determined by calculating the change in momentum and dividing it by the duration of the collision. The impulse, which is the change in momentum, helps in finding this average force. The discussion emphasizes the relationship between impulse, momentum, and force in collision scenarios.
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A 12 kg block (A) is sliding right with a speed of 2.2 m/s collides with a 20 kg block (B) which is traveling left at 3.0 m/s.

After the collision the 12 Kg block is moving left at a speed of 1.6 m/s

a) what is the velocity of the 20 kg block after the collision?

b) The collision lasts for 0.025s, what is the average force experienced by the 12kg block?



For a) i just used:

P = mv

Pa + Pb = Pa' + Pb'

plugged in the numbers and got Vb' = .72 m/s left.


I'm having trouble with part b) .. any ideas on how i could get started?

thanks
 
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For part B), you need to consider the relationship between impulse and momentum (in terms of forces).
 
ok, well i know that impulse is the change in momentum.

I could find the change in momentum by subtracting Pa' from Pa.

So now I have the impulse


How do I come up with the average force? or is the impulse itself the average force?
 
Force is the change in momentum per unit time.
Average force is the net change in momentum over the net change in time.
 
man i have to learn how to use these markup codes...

so I'm thinking that the average force can be found by using:

F = (m /\V)/(/\t)

Im using /\ for delta or "change in"
 
That looks good to me.
 
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