A particle moves move on the rough horizontal ground with some initial velocity `V_(0)`. If `(3)/(4)` of its kinetic enegry lost due to friction in time `t_(0)`. The coefficient of friction between the particle and the ground is.A. `(v_(0))/(2"gt"_(0))`B. `(v_(0))/(4"gt"_(0))`C. `(3v_(0))/(4"gt"_(0))`D. `(v_(0))/("gt"_(0))`

A particle moves move on the rough horizontal ground with some initial

1.	A particle moves move on the rough horizontal ground with some initial velocity `V_(0)`. If `(3)/(4)` of its kinetic enegry lost due to friction in time `t_(0)`. The coefficient of friction between the particle and the ground is.A. `(v_(0))/(2"gt"_(0))`B. `(v_(0))/(4"gt"_(0))`C. `(3v_(0))/(4"gt"_(0))`D. `(v_(0))/("gt"_(0))`
Answer» Correct Answer - A (a) `(3)/(4)`th of KE is lost. Hence left KE is `(1)/(4)`th or, `v^(2)=(v_(0)^(2))/(4)` `:. " " v=(v_(0))/(2)=v_(0)-at_(0)=v_(0)-mu" gt"_(0)` or `" " mu=(v_(0))/(2"gt"_(0))`

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