A particle is dropped from rest vertically from a height The time taken by it to fall through successive distances of 1 m cach will then be :

A particle is dropped from rest vertically from a height The time take

1.	A particle is dropped from rest vertically from a height The time taken by it to fall through successive distances of 1 m cach will then be :
Answer» All EQUAL being equal to `sqrt(2/g)`sec. In the ratio of square roots of integers 1,2,3,4 In the ratio of the difference in the square roots of integers i.e. `(sqrt(1) - sqrt(0)),(sqrt(2) - sqrt(1)) ,(sqrt(3)-sqrt(2))` In the ratio of `(1)/(sqrt(1)):(1)/(sqrt(2)):(1)/(sqrt(3))` Solution :Herelet `t_1,t_2,t_3` be the TIME in which the body covers1m , 2m 3M …. STARTING from rest . Then `1=(1)/(2)g.t_(1)^(2)`or `t_1sqrt((2)/(g))` `:.` Interval to coverfirst meter distance `=(sqrt((2)/(g)-sqrt(0)))=sqrt((2)/(g))(sqrt(1)-sqrt(0))` Similarly intervel to cover third meter `=sqrt((2)/(g))(sqrt(3)-sqrt(2))` Ration of intervals `=(sqrt(1)-sqrt(0)):(sqrt(2)-sqrt(1)):(sqrt(3)-sqrt(2))`

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A particle is dropped from rest vertically from a height The time taken by it to fall through successive distances of 1 m cach will then be :

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