Velocity of a particle moving along x-axis is given as $v = t^{2} - 4 t$

Particle accelerates for

0 \leq t < 2

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Particle accelerates for

2 \leq t \leq 4

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Maximum speed attained by the body between 0 to 4 sec is 4 m/s

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Particle retards for

2 < t \leq 4

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Solution

The correct option is D Particle retards for $2 < t \leq 4$
$a = \frac{d v}{d t} = 2 t - 4$
$a < 0 f r o m 0 s t o 2 s,$ therefore it is retarding
$a > 0 f r o m 2 s t o 4 s$ therefore it is accelerating
As it is retarding for the first 2 seconds, the minimum velocity occurs at t = 2 sec and it is equal to $v (2) = 2^{2} - 4 \times 2 = - 4 m / s$ . Miniumum negative velocity means maximum speed.
$∴$ maximum speed is 4 $m / s$

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