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The displacement 'x' and time of travel ...

The displacement 'x' and time of travel 't' for a particle moving an a straight line are related as `t = sqrt((x+1)(x-1))`. Its acceleration at a time `t` is

A

`(1)/(x)-(1)/(x^(2))`

B

`(1)/(x^(3))`

C

`(-t^(2))/(x^(3))`

D

`(-t)/(x^(2))`

Text Solution

Verified by Experts

The correct Answer is:
B
`t_(2) =x_(2) -1`
`x_(2) =1 + t_(2)`
`x(dx)/(dt) =t`
`rArr ((dx)/(dt))^(2)+x(d^(2)x)/(dt)=1`
`rArr (xd^(2)x)/(dt^(2))=1-((dx)/(dt))^(2)=1-((t)/(x))^(2)`
`=(x^(2)-t^(2))/(x^(2))=(1)/(x^(2))rArr a=(d^(2)x)/(dt^(2))=(1)/(x^(3))`.
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