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Answer the following questions: (a) Th...

Answer the following questions:
(a) The motion of a simple pendulum is approximately simple harmonic for small angle oscillation. For larger angles of oscilliation, a more involved analysis shows that `T` is greater than `2pisqrt((t)/(g))` Think of a qualitative argument to appreciate this result.
(b) What is the frequency of oscillation of a simple pendulum mounted in a cabin that is freely falling under gravity ?

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The correct Answer is:
(a) `sin theta lt theta` ; if the restoring force, `mg sin theta` is replaced by `mgtheta`, this amounts to effective reduction in `g` for large angels and hence an increase in time period `T` over that given by the formula `T = 2pisqrt((l)/(g))` where one assume `sin theta = theta`.
(b) Gravity disappears for a man under free fall, so frequency is zero.
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RESONANCE-SIMPLE HARMONIC MOTION -Board Level Exercise
  1. Answer the following questions: (a) The motion of a simple pendulum ...

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  2. What is periodic motion ?

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  3. What is oscillatory motion ?

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  4. Are all periodic motions oscillatory ?

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  5. What is meant by S.H.M. ?

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  6. Define amplitude of S.H.M. ?

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  7. Why the motion of a satellite around a planet cannot be taken as S.H.M...

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  8. Is oscillation of a mass suspended by a spring simple harmonic ?

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  9. Which of the following examples represent (nearly) simple harmonic mot...

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  10. Fill in the blanks using appropriate word from the list at the end of ...

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  11. A restoring force is a must for a body to execute S.H.M Explain, why

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  12. A man is standing on a platform moving up and down as a S.H.M. will th...

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  13. An air chamber of volume V has a neck area of cross section A into whi...

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  14. Show that for a particle in linear S.H.M., the average kinetic energy ...

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  15. A man with a wrist watch on his hands fall from the top of a tower. Do...

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  16. Time period of a particle in SHM depends on the force constant k and m...

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  17. Figure a) shows a spring of force constant k clamped rigidly at once e...

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  18. What is a simple pendulum? Find an expression for the time period and ...

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  19. Answer the following questions: (a) The motion of a simple pendulum ...

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  20. A simple pendulum of length l and having a bob of mass M is suspended ...

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  21. Define resonance.

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