JEE Main On 8 April 2017 Question 25

Question: The ratio of maximum acceleration to maximum velocity in a simple harmonic motion is $ 10{s^{-1}}. $ [JEE Online 08-04-2017] At, t = 0 the displacement is 5 m. What is the maximum acceleration? The initial phase is $ \frac{\pi }{4}. $

Options:

A) $ 500m/s^{2} $

B) $ 750\sqrt{2}m/s^{2} $

C) $ 750m/s^{2} $

D) $ 500\sqrt{2}m/s^{2} $

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Answer:

Correct Answer: D

Solution:

  • $ {f _{\max }}=\omega a $ $ {V _{\min }}=a\omega $ $ \frac{\omega a}{a\omega }=10 $ W = 10 $ x=a\sin (\omega +\pi /4) $ At f = 0 $ 5=a\sin (\pi /4) $ $ a=5\sqrt{2} $ Max acc. = w2a $ =100\times 5\sqrt{2} $ $ =500\sqrt{2} $