Starting from rest, a body slides down a 45° inclined plane in twice the time it takes to slide down the same distance in the absence of friction. The coefficient of friction between the body and the inclined plane is

Question

Starting from rest, a body slides down a 45° inclined plane in twice the time it takes to slide down the same distance in the absence of friction. The coefficient of friction between the body and the inclined plane is (A) 0.80 (B) 0.75 (C) 0.25 (D) 0.33

Tardigrade Admin · Accepted Answer

The various forces acting on the body have been shown in the figure. The force on the body down the inclined plane in presence of friction

μ

is

F = m g sin θ - f = m g sin θ - μ N = ma

or

a = g sin θ - μg cos θ .

Since block is at rest thus initial velocity

u = 0

∴

Time taken to slide down the plane

t_{1} = \frac{2 s}{a} = \frac{2 s}{g s i n θ - μg c o s θ}

In absence of friction time taken will be

t_{2} = \frac{2 s}{g s i n θ}

Given

: t_{1} = 2 t_{2} .

∴ t_{1}^{2} = 4 t_{2}^{2}

or

\frac{2 s}{g ( s i n θ - μ c o s θ )} = \frac{2 s \times 4}{g ( s i n θ )}

or

sin θ = 4 sin θ - 4 μ cos θ

or

μ = \frac{3}{4} tan θ = 0.75

Q. Starting from rest, a body slides down a 45∘ inclined plane in twice the time it takes to slide down the same distance in the absence of friction. The coefficient of friction between the body and the inclined plane is

0.80

0.75

0.25

0.33

Q. Starting from rest, a body slides down a $4 5^{\circ}$ inclined plane in twice the time it takes to slide down the same distance in the absence of friction. The coefficient of friction between the body and the inclined plane is