A body starts from rest. What will be the ratio of the distance travelled by the body during the $4^{t h}$ and $3^{r d}$ second?

7 / 5

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5 / 7

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7 / 3

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3 / 7

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Solution

The correct option is A $7 / 5$
We know that distance covered in $n^{t h}$ second is given by the relation
$s_{n} = u + \frac{a}{2} (2 n - 1)$
Here,
$s_{n}$ = distance travelled in $n^{t h}$ second.
$u$ = initial velocity of body
$a$ = acceleration
As started from rest $(u = 0)$
$∴ s_{n} \propto (2 n - 1)$
$∴ \frac{s_{4}}{s_{3}} = \frac{7}{5}$

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