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Question

A 3 kg ball moving in rightward direction on a horizontal surface with speed 4 m/s collides with a 4 kg ball moving ahead of it, in rightward direction with a speed of 2 m/s. If the coefficient of restitution is 0.6, find the final speed of 3 kg and 4 kg balls respectively in m/s.

A
6.67 m/s and 8.27 m/s
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B
1.17 m/s and 2.27 m/s
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C
4 m/s and 5 m/s
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D
2.17 m/s and 3.37 m/s
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Solution

The correct option is D 2.17 m/s and 3.37 m/s

Before collision, the balls are moving with the velocities u1, u2 along the +ve x direction.


After collision, let the balls be moving with velocities v1, v2 along the +ve x direction as shown in the figure.

Applying linear momentum conservation along x direction for the system of balls:
Pi=Pf
m1u1+m2u2=m1v1+m2v2
3×4+4×2=3×v1+4×v2
3v1+4v2=20 ...(i)

Now, e=speed of seperationspeed of approach
0.6=v2v1u1u2
0.6=v2v142
v2v1=1.2 ...(ii)

3× Eq. (ii)+ Eq. (i) gives:
7v2=23.6
v2=23.67=3.37 m/s

From Eq (ii)
v1=3.371.2=2.17 m/s
Hence 2.17 m/s and 3.37 m/s are the final speeds of 3 kg and 4 kg balls respectively.

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