The equation of motion of a stone thrown vertically upwards from the surface of a planet is given by $s = 10 t - 3 t^{2}$ , and the units of $s$ and $t$ are cm and sec respectively. The stone will return to the surface of the planet after

$\frac{10}{3} s e c$

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$\frac{5}{3} s e c$

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$\frac{20}{3} s e c$

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$\frac{5}{6} s e c$

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Solution

The correct option is A
$\frac{10}{3} s e c$

Step 1: Given Data:
The equation of motion, $s = 10 t - 3 t^{2} \cdot \cdot \cdot \cdot \cdot (1)$
Step 2: Formula used:
The relation between velocity and displacement is given by-
$v = \frac{d s}{d t}$
Step 3: Calculation of time:
Differentiate the equation $(1)$ with respect to time to obtain velocity,
$\begin{array}{rcl} \frac{d s}{d t} & = & \frac{d (10 t - 3 t^{2})}{d t} \\ v & = & 10 - 6 t \end{array}$
But $v = 0$ at maximum height. So,
$\begin{array}{rcl} 0 & = & 10 - 6 t \\ 6 t & = & 10 \\ t & = & \frac{5}{3} \end{array}$
Therefore, the stone will return in $2 \times (\frac{5}{3}) = \frac{10}{3} s e c$ as it reached a maximum height in $\frac{5}{3} s e c$ similarly it will take the same time to return to the surface of the planet.
Hence, option A is the correct answer.

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The equation of motion of a stone thrown vertically upwards from the surface of a planet is given by s=10t–3t2, and the units of s and t are cm and sec respectively. The stone will return to the surface of the planet after

The equation of motion of a stone thrown vertically upwards from the surface of a planet is given by $s = 10 t - 3 t^{2}$ , and the units of $s$ and $t$ are cm and sec respectively. The stone will return to the surface of the planet after