Question

A ball with a mass of `4 kg` and velocity of `1 m/s` collides with a second ball with a mass of `2 kg` and velocity of `- 5 m/s`. If `75%` of the kinetic energy is lost, what are the final velocities of the balls?

Answer 1

The final velocities are first ball `=-0.17ms^-1` and the second ball `v_2=-2.66ms^-1`

Explanation:

By the Law of conservation of momentum

`m_1u_1+m_2u_2=m_1v_1+m_2v_2`

The initial kinetic energy is

`KE_1=1/2m_1u_1^2+1/2m_2u_2^2`

The final kinetic energy is

`KE_2=1/2m_1v_1^2+1/2m_2v_2^2`

And

`KE_2=0.25KE_1`

so,

`4*1-2*5=4v_1+2v_2`

`4v_1+2v_2=-6`

`v_2=-(2v_1+3)`...................................`(1)`

`KE_1=1/2m_1u_1^2+1/2m_2u_2^2`

`=1/2*4*1^2+1/2*2*5^2=2+25=27J`

`KE_2=0.25*27=6.75J`

`1/2m_1v_1^2+1/2m_2v_2^2=6.75`

`4v_1^2+2v_2^2=13.5`

`2v_1^2+v_2^2=6.75`..................................`(2)`

Solving for `v_1` and `v_2` in equations `(1)` and `(2)`

`2v_1+(2v_1+3)^2=6.75`

`2v_1+4v_1^2+12v_1+9-6.75=0`

`4v_1^2+14v_1+2.25=0`

Solving this quadratic equation

`v_1=(-14+-sqrt(14^2-4*4*2.25))/(2*4)`

`=(-14+-sqrt160)/(8)=(-14+-12.65)/8`

`v_1=-3.33ms^-1` or `v_1=-0.17`

And

`v_2=-(2v_1+3)=3.66` or `v_2=-2.66`

The final speeds are `(v_1=-3.33 and v_2=3.66)` or `v_1=-0.17 and v_2=-2.66`