A metro train starts from rest and in $5 s$ achieves $108 k m h^{- 1}$ After that, it moves with constant velocity and comes to rest after travelling $45 m$ with uniform retardation. If the total distance travelled is $395 m$ , find the total time of travelling.

$12.2 s$
$15.3 s$
$9 s$
$17.2 s$

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Solution

The correct option is D
$17.2 s$

The explanation for the correct option:
Step 1:Finding the acceleration
Given
$\begin{array}{rcl} v & = & 108 k m / h \\ = & 30 m / s \end{array}$
initially at rest $u = 0$
From first equation of motion
$\begin{array}{rcl} v & = & u + a t \\ 30 & = & 0 + (a \times 5) (∵ \sin c e u = 0) \\ a & = & 6 m / s^{2} \end{array}$
Step 2: Finding the distance travelled by metro train in $5 s$ :
So, the distance travelled by metro train in $5 s$
$\begin{array}{rcl} s_{1} & = & u t + \frac{1}{2} a t^{2} b u t u = 0 \\ s_{1} & = & \frac{1}{2} a t^{2} \\ = & \frac{1}{2} \times (6) \times {(5)}^{2} = 75 m \end{array}$
Step 3: Finding the new acceleration:
Distance travelled before coming to rest $= 45 m$
So, from third equation of motion
$\begin{array}{rcl} u^{2} & = & v^{2} - 2 a s \\ 0 & = & {(30)}^{2} - 2 (a' \times 45) \\ a' & = & \frac{30 \times 30}{2 \times 45} \\ = & 10 m s^{- 2} \end{array}$
Step 4: Finding the total distance and total time taken:
Time taken in travelling $45 m$ is
$\begin{array}{rcl} t_{3} & = & \frac{30}{10} \\ = & 3 s \end{array}$
Now, total distance $= 395 m$
so,
$\begin{array}{rcl} 75 + y + 45 & = & 395 m o r \\ s' & = & 395 - (75 + 45) \\ = & 275 m \\ ∴ t_{2} & = & \frac{275}{30} \\ = & 9.2 s \end{array}$
Hence, total time taken in whole journey
$= t_{1} + t_{2} + t_{3} = 5 + 9.2 + 3 = 17.2 s$
Hence, the correct answer is option (D).

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