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प्रश्न
The displacement of the particle executing linear S.H.M. is x = 0.25 Sill ( 11 l + 0.5) m. The period of S.H.M. is ______.
(`pi = 22/7` )
पर्याय
`3/7`s
`2/7`s
`4/7`s
`1/7`s
MCQ
रिकाम्या जागा भरा
उत्तर
The displacement of the particle executing linear S.H.M. is x = 0.25 Sill ( 11 l + 0.5) m. The period of S.H.M. is `4/7`s.
Explanation:
x = 0.25 sin(11 t + 0.5)
Comparing with x =A sin `(omega"t" + phi)`
∴ `omega` = 11
∴ Time Period, T = `(2pi)/omega= (2 xx 22)/(7 xx 11) = 4/7`s
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