A particle starts from the origin with a velocity of `10 m s^(-1)` and moves with a constant acceleration till the velocity increases to `50 ms^(-1)`. At that instant, the acceleration is suddenly reversed. What will be the velocity of the particle, when it returne to the starticng point?A. ZeroB. `10ms^(-1)`C. `50 ms^(-1)`D. `70 ms^(-1)`

A particle starts from the origin with a velocity of `10 m s^(-1)` and

1.	A particle starts from the origin with a velocity of `10 m s^(-1)` and moves with a constant acceleration till the velocity increases to `50 ms^(-1)`. At that instant, the acceleration is suddenly reversed. What will be the velocity of the particle, when it returne to the starticng point?A. ZeroB. `10ms^(-1)`C. `50 ms^(-1)`D. `70 ms^(-1)`
Answer» Correct Answer - D `2ax=(50)^(2)-(10)^(2)` and `2(-a)(-x) =v^(2)-(50)^(2)` This gives `v^(2)-(50)^(2) =(10)^(2)` i.e. `v=70 ms^(-1)`.

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