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Question

A block A of mass 5 kg is placed on a table and connected to another block B of mass 3 kg with a light string passing over a frictionless pulley. The coefficient of friction between the table the block A is 0.4. The block B is suddenly dropped and the string breaks after 3 seconds. What is the total distance covered by block A?


A
5.625 m
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B
1.75 m
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C
7.375 m
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D
6.5 m
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Solution

The correct option is C 7.375 m

From the free body diagrams, we have
mBgT=mBa ...(i)



Balancing force along y axis.
N=mAg
fk=μN=μmAg
Balancing force along x axis.
Tfk=TμmAg=mAa ...(ii)

Adding equation (i) and (ii)
g(mBμmA)=a(mA+mB)

a=g(mBμmA)(mA+mB)

=10(30.4×5)(3+5)

=1.25 m/s2



During the first 3 seconds, the block A travels a distance of
s=ut+12at2
=0+12×1.25×32
=5.625 m


After the string gets cut, the block A will have an initial velocity
u1=0+1.25×3=3.75 m/s
and an acceleration a1=μg=0.4×10=4 m/s2

Here the negative sign indicates that the body will slow down after the string is cut due to friction.

The distance that the block covers after the string is cut,
s1=v2u212a1

=03.7522(4)

=1.75 m
Total distance=(s+s1)=(5.625+1.75) m=7.375 m

The block covers a total distance of 7.375 m.

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