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Question

If a train travelling at 72 kmph is to be brought to rest in a distance of 200 metres, then its retardation should be

A
20 ms2
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B
10 ms2
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C
2 ms2
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D
1 ms2
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Solution

The correct option is D 1 ms2
Given, u=72 kmph=20 m/s,v=0
let retardation of the train be a
By using third law of equation we have
v2=u22as
a=u22s=(20)22×200=1 m/s2

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