Two blocks A and B each of mass m are connected by a massless spring of natural length L and spring constant K. The blocks are initially resting on a smooth horizontal floor with spring at its natural length as shown in the figure. A third identical block C, also of mass m, moves on the floor with a speed v along the line joining A and B and collides with A. Then,
The maximum compression of the spring is
Let v1 be the velocity acquired by A and B.
According to the law of conservation of momentum,
mv=mv1+mv1 or v1=v2
According to law of conservation of energy,
12mv2=12mv21+12mv21+12kx2,
where x is the compression.
∴ mv2=mv24+mv24+kx2⇒x=v√m2k
At maximum compression, KE of the AB system will be,
12mv21+12mv21=mv21=mv24