A particle starting from rest moves in a circle with a velocity of $v = 5 sin 100 π t$ . The magnitude of component of acceleration along the direction of velocity at $t = \frac{1}{2} seconds$ is (in ${m/s}^{2}$ )

Zero

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500 π

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1000 π

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\frac{1}{20 π}

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Solution

The correct option is B $500 π$
Given, $v = 5 sin 100 π t$
Since $v$ depends on time, it is non uniform circular motion.
And the component of acceleration along $v$ is tangential acceleration.
$∴ a_{t} = \frac{d v}{d t} = \frac{d}{d t} (5 sin 100 π t)$
$= 500 π cos (100 π t)$
At $t = \frac{1}{2} seconds$ ,
$a_{t} = 500 π cos (50 π) = 500 π {m/s}^{2}$

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