Chapter 8 : Principles of Friction 141
Substituting the value of R 1 in equation (i),
P 1 cos θ = W sin α – μ (W cos α – P 1 sin θ)
= W sin α – μ W cos α + μ P 1 sin θ
P 1 cos θ – μ P 1 sin θ = W sin α – μ W cos α
P 1 (cos θ – μ sin θ) = W (sin α – μ cos α)∴ 1
(sin – cos )
(cos – sin )PW
α μ α
=×
θ μ θ
and now substituting the value of μ = tan φ in the above equation,
1(sin – tan cos )
(cos – tan sin )PW
α φ α
=×
θ φ θ
Multiplying the numerator and denominator by cos φ,1(sin cos – sin cos ) sin ( – )
(cos cos – sin sin ) cos ( )PW W
α φφααφ
=× =×
θ φφθθ+φ- Maximum force (P 2 ) which will keep the body in equilibrium, when it is at the point of
sliding upwards.
In this case, the force of friction (F 2 = μ R 2 ) will act downwards as the body is at the point of
sliding upwards as shown in Fig. 8.17 (b). Now resolving the forces along the plane.
P 2 cos θ = W sin α + μ R 2 ...(iii)and now resolving the forces perpendicular to the plane,
R 2 = W cos α – P 2 sin θ ...(iv)
Substituting the value of R 2 in equation (iii),
P 2 cos θ = W sin α + μ (W cos α – P 2 sin θ)
= W sin α + μ W cos α – μ P 2 sin θ
P 2 cos θ + μ P 2 sin θ = W sin α + μ W cos α
P 2 (cos θ + μ sin θ) = W (sin α + μ cos α)∴ 2(sin cos )
(cos sin )PW
α+μ α
=×
θ+μ θand now substituting the vaue of μ = tan φ in the above equation,
2(sin tan cos )
(cos tan sin )PW
α+ φ α
=×
θ+ φ θ
Multiplying the numerator and denominator by cos φ,2(sin cos sin cos ) sin ( )
(cos cos sin sin ) cos ( – )PW Wα φ+ φ αα+φ
=× =×
θ φ+ φ θθφ
Example 8.11. Find the force required to move a load of 300 N up a rough plane, the force
being applied parallel to the plane. The inclination of the plane is such that when the same load is
kept on a perfectly smooth plane inclined at the same angle, a force of 60 N applied at an inclination
of 30° to the plane, keeps the same load in equilibrium.
Assume coefficient of friction between the rough plane and the load to be equal to 0.3.