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Question

A car accelerates from rest with a constant acceleration α on a straight road. After gaining a velocity v, the car moves with the same velocity for some time. Then the car is decelerated to rest with a retardation β. If the total distance covered by the car is equal to S, the total time taken for its motion is

A
Sv+v2(1α+1β)
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B
Sv+vα+vβ
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C
(vα+vβ)
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D
Svv2(vα+vβ)
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Solution

The correct option is A Sv+v2(1α+1β)
Let’s try to solve this problem with the help of graphical representation. Figure below illustrates the situation given in the problem

From v=u+at, we have
When the body is accelerating
v=0+αt1t1=v/α .......(i)
When the body is decelerating
0=vβt3t3=v/β ......(ii)
From the figure and from (i) and (ii), we can say
S=12vt1+vt2+12vt3
=v22α+vt2+v22β
t2=Svv2(1α+1β)
Using (i), (ii) and (iii), we get
t1+t2+t3=Sv+v2(1α+1β)
Thus, the correct answer is option (a)

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