The position $x$ of a particle with respect to time $t$ along x-axis is given by $x = 9 t^{2} - t^{3}$ , where $x$ is in metres and $t$ in seconds. What will be the position of this particle when it achieves maximum speed along the $+ x$ direction?

54 m

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81 m

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24 m

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32 m

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Solution

The correct option is A 54 m
Given, $x = 9 t^{2} - t^{3}$ ,
Speed $v = \frac{d x}{d t} = \frac{d}{d t} (9 t^{2} - t^{3}) = 18 t - 3 t^{2}$ .
For maximum speed $\frac{d v}{d t} = 0 \Rightarrow 18 - 6 t = 0$
$∴ t = 3 s$ .
$∴ x_{m a x} = 81 - 27 = 54 m$
from $(x = 9 t^{2} - t^{3})$
Hence, the correct answer is option (a).

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