A space shuttle moving at $2 m/s$ at $t = 0$ begins to accelerate at a constant rate of $2 {m/s}^{2}$ . If $S_{n}$ is the distance covered by it in the $n^{th}$ second, then:

S_{1} + S_{4} > S_{2} + S_{3}

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S_{1} + S_{4} = S_{2} + S_{3}

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S_{1} + S_{4} < S_{2} + S_{3}

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Solution

The correct option is B $S_{1} + S_{4} = S_{2} + S_{3}$
We know,
$S_{n} = u (1) + \frac{1}{2} a (2 n - 1)$
Also, it is given that,
$u = 2 m/s$
$a = 2 {m/s}^{2}$
Replacing values in the equation we get
$\Rightarrow S_{n} = 2 + (2 n - 1)$
$\Rightarrow S_{n} = 2 n + 1$
$∴ S_{1} = 3 m$
$S_{2} = 5 m$
$S_{3} = 7 m$
$S_{4} = 9 m$

$\Rightarrow S_{1} + S_{4} = S_{2} + S_{3} = 12 m$

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A space shuttle moving at 2 m/s at t=0 begins to accelerate at a constant rate of 2 m/s2. If Sn is the distance covered by it in the nth second, then:

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A space shuttle moving at $2 m/s$ at $t = 0$ begins to accelerate at a constant rate of $2 {m/s}^{2}$ . If $S_{n}$ is the distance covered by it in the $n^{th}$ second, then: