- #1
Joe Jacobs
- 10
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Homework Statement
Two small steel balls A and B have mass 0.6 kg and 0.2 kg respectively. They are moving
towards each other in opposite directions on a smooth horizontal table when they collide
directly. Immediately before the collision, the speed of A is 8 m s–1 and the speed of B is 2 m s–1. Immediately after the collision, the direction of motion of A is unchanged and the speed of B is twice the speed of A. Find
(a) the speed of A immediately after the collision,
(b) the magnitude of the impulse exerted on B in the collision.
Homework Equations
total momentum before collision = total momentum after collision
p=mv
Impulse = Ft = m(v-u)
The Attempt at a Solution
I've got the correct answer for (a), 4.4 m s-1 so I'll skip that bit. It's (b) that I don't get. It asks for the impulse exerted on B so that should be the impulse exerted by A
Ft = 0.6(4.4 - 8) = 0.6(-3.6) = -2.16 N s
since they ask for magnitude only
/therefore Impulse = 2.16 N s
But the answer given calculates the impulse exerted by B and still gets the same answer
Impulse = 0.2(2 + 8.8) = 2.16 N s
Why?
EDIT: Sorry don't know how to get the therefore symbol in LaTeX...my first time using it actually :D
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