A simple pendulum has time period (T_1). The point of suspension is now moved upward according to the relation `y = K t^2, (K = 1 m//s^2)` where (y) is the vertical displacement. The time period now becomes (T_2). The ratio of `(T_1^2)/(T_2^2)` is `(g = 10 m//s^2)`.A. `(5)/(6)`B. `(6)/(5)`C. `1`D. `(4)/(5)`

A simple pendulum has time period (T_1). The point of suspension is no

1.	A simple pendulum has time period (T_1). The point of suspension is now moved upward according to the relation `y = K t^2, (K = 1 m//s^2)` where (y) is the vertical displacement. The time period now becomes (T_2). The ratio of `(T_1^2)/(T_2^2)` is `(g = 10 m//s^2)`.A. `(5)/(6)`B. `(6)/(5)`C. `1`D. `(4)/(5)`
Answer» Correct Answer - B `T_(1) = 2pi sqrt((l)/(g)) = 2pi sqrt((l)/(10))` upward accelertion `(d^(2)y)/(dt^(2)) = 2k = 2 xx 1 = 2 m//s^(2)` `:.` Acceleration `w.r.t.` point of suspension `= 12 m//s^(2)` `T_(2) = 2pisqrt((l)/(12)) :. (T_(1))/(T_(2)) = sqrt((12)/(10)) :. ((T_(1))/(T_(2)))^(2) = (6)/(5)` `T_(1) = 2pi sqrt((l)/(g)) = 2pi sqrt((l)/(10))`

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