A particle strikes a horizontal smooth f...

A particle strikes a horizontal smooth floor with a velocity a making an angle `theta` with the floor and rebounds with velocity `v` making an angle `phi` with the floor. If the coefficient of restitution between the particle and the floor is `e`, then

the impulse delivered by the floor to the body is `mu(1+e)sintheta`

`tanphi=e"tan"theta`

`v=usqrt(1-(1-e)^2sin^(2)theta)`

the ratio of final kinetic energy to the initial kinetic energy is `(cos^(2)theta+e^(2)sin^(2)theta)`

Text Solution

Verified by Experts

The correct Answer is:

A, B, D

`vsinphi=eusintheta, v cos phi=ucostheta`

`v=usqrt(cos^(2)theta+e^(2)sin^(2)theta)=usqrt(1-sin^(2)theta+e^(2)sin^(2)theta)`
`=usqrt(1-(1-e^(2))sin2theta)`
`I=m(vsinphi+usintheta)="mu"sintheta(1+e)`
Ratio of `KE` `=(1/2mv^(2))/(1/2"mu"^(2))=cos^(2)theta+e^(2)sin^(2)theta`

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