The amplitude of a executing `SHM` is `4cm` At the mean position the speed of the particle is `16 cm//s` The distance of the particle from the mean position at which the speed the particle becomes `8 sqrt(3)cm//s` will beA. `2sqrt(3) cm`B. `sqrt(3) cm`C. `1 cm`D. `2 cm`

The amplitude of a executing `SHM` is `4cm` At the mean position the s

1.	The amplitude of a executing `SHM` is `4cm` At the mean position the speed of the particle is `16 cm//s` The distance of the particle from the mean position at which the speed the particle becomes `8 sqrt(3)cm//s` will beA. `2sqrt(3) cm`B. `sqrt(3) cm`C. `1 cm`D. `2 cm`
Answer» Correct Answer - D At mean position velocity is maximum `i.e. v_(max) = omega a rArr omega rArr omega = (v_(max))/(a) = (16)/(4) = 4` `:. V = omega sqrt(a^(2) - y^(2)) rArr 8 sqrt(4^(2) - y^(2))` `rArr 192 = 16(16 - y^(2)) rArr 12 = 16 - y^(2) rArr y = 2 cm`

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The amplitude of a executing `SHM` is `4cm` At the mean position the speed of the particle is `16 cm//s` The distance of the particle from the mean position at which the speed the particle becomes `8 sqrt(3)cm//s` will beA. `2sqrt(3) cm`B. `sqrt(3) cm`C. `1 cm`D. `2 cm`

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