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Question

A block of mass 10 kg is kept on an inclined plane having an angle of inclination 37 attached with a spring of force constant 20 N/m as shown in the figure. If the coefficient of friction between block and incline is 0.8, then the maximum value of elongation for which the block is in contact with the inclined plane and has no slipping is


A
0.3 m
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B
0.156 m
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C
2 m
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D
6.66 m
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Solution

The correct option is B 0.156 m
The FBD of the block can be shown as below.
Here, R is the normal reaction force


Since the block will not slide, the maximum elongation can be obtained at the limiting condition.
From the FBD, we have
Fy=0 (perpendicular to the plane)
kxsin37+R=mgcos37
Fx=0 (along the incline)
mgsin37+kxcos37=f

Since limiting friction f=μR, we get
mgsin37+kxcos37=μ(mgcos37kxsin37)
kx(cos37+μsin37)=mg(μcos37sin37)
kx=mg(μcos37sin37)cos37+μsin37
x=mgk(μcos37sin37cos37+μsin37)
x=10020(45×4535)(45+45×35)
=5⎢ ⎢ ⎢16253545+1225⎥ ⎥ ⎥=532=0.156 m

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