Question #31590

1 Answer
Oct 24, 2016

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Forces acting on the body are shown in the diagram above

Sum of the forces along the inclined plane:
#F_"net" = mg sin theta -f #
where #mg# is the weight of the body and #f# is force of friction.

There is no acceleration along the inclined plane, #F_"net" = 0#, therefore
#mg sin theta =f # ......(1)

Similarly in a direction perpendicular to the inclined plane:
#F_"net" = N -mg cos theta#
where #N# is normal reaction.

As per given condition above there is no acceleration in this direction either, #F_"net" = 0#, and therefore
#N =mg cos theta# ......(2)

If #mu_k# is coefficient of kinetic friction, then
#f = µ_kN#

Using (1) and (2) we get
#mg sin theta=mu_kxxmg cos theta#

Solving for #mu_k#
#mu_k=tan theta#
#mu_k=tan 30^@=1/sqrt3#