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Question

The figure shows the velocity-time graph for a train as it moves along a straight line. At time t=0 the train passes a point A and is moving at 3 m/s. The farthest point from A reached by the train in the 120 s period is P. Choose the correct option(s)

A
The value of t at the instant when the train reaches P is 40 s.
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B
The magnitude of the acceleration of the train in the time interval 50<t<80 (t in seconds) is 115 m/s2
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C
The distance of the train from A at the end of the 120 s period is 35 m.
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D
The distance of the train from A at the end of the 120 s period is 105 m.
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Solution

The correct option is C The distance of the train from A at the end of the 120 s period is 35 m.
From the graph, we can clearly see that the particle reverses its direction after t=50 s. From t=40 s to t=50 s, the particle is at rest, so the particle is at the farthest point at t=40 s.
Acceleration in this interval 50<t<80 (t in seconds) is
|a|=ΔvΔt=230=115 m/s2
Area under curve from t=0 to 40 s
=30×3+12×10×3=90+15=105 m.
Area from t=50 s to 120 s. =12×70×2=70 m.
We know that area under the vt graph represents displacement
Total displacement of the particle from A=[105 70]=35 m.

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