In the figure shown below, a 4kg block is compressed by 2m. The coefficient of friction between the block and the plane is μ=0.8. Then the frictional force (in N) acting on the block is given by
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Solution
The FBD of the block is as shown in the below figure.
From the FBD, at limiting condition we have ∑Fy=0 (perpendicular to the plane) ⇒N=mgcos37∘=40×45=32N ∑Fx=0 (along the plane) ⇒mgsin37∘+f=kx...........(1)
Limiting friction (fmax)=μsN=0.8×32=25.6N
Let the maximum compression in spring for which block will not slide be xmax
From eq (1), kxmax=mgsin37∘+fmax=40×35+25.6=49.6 ⇒xmax=49.6k=49.620=2.48m
As per the question, the spring is compressed by a length 2m, so it will not slide (∵2m<2.48m)
∴ from equation (1), the friction force acting on the block is given by mgsin37∘+f=kx⇒f=kx−mgsin37∘ ⇒f=20×2−40×35=16N