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Question

The rear side of a truck is open and a box of 40 kg mass is placed 5 m away from the open end as shown. The coefficient of friction between the box & the surface below it is 0.15. On a straight road, the truck starts from rest and accelerates with 2 ms2. At what distance from the starting point does the box fall off the truck (i.e. distance travelled by the truck) ?[Ignore the size of the box]


A
40 m
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B
20 m
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C
30 m
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D
50 m
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Solution

The correct option is B 20 m
Let the acceleration of the box w.r.t truck be abox
Given, truck starts from rest and accelerates with a=2 m/s2
In the reference frame of the truck FBD of 40 kg block is as shown


From the FBD we have,
N=40×g=400 N
f=μN=0.15×400=60 N
Net force acting on the box is
maμN 40×260=20 N
m(abox)=20 abox=2040=12 m/s2

So, time taken by box to fall down from truck
S=ut+12(abox)t2
5=0+12×12×t2t2=20 s

Thus, distance moved by the truck is
S=ut+12at2
S=12×a×t2
S=12×2×(20)=20 meters

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