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the potential energy fraction fof a …

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the potential energy fraction fof a particle executing simple harmonic motion is given by v(x) =kx^2/2 where k is force constant of the oscillator for k= 0.5 n /m the graphy is as shown. Show that a particle of total energy moving underthe PE must turn back when it reaches x= +2 metre

    • Posted by Dinesh M 7 years, 9 months ago

    CBSE > Class 11 > Physics
    • 0 answers
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