Answer:
(A) Work done by friction, Wf = 1128.1 J
(B) The coefficient of kinetic friction between the seal and the ramp,μ is 0.268
Step-by-step explanation:
Given;
mass of seal, m = 116 kg
top of the ramp, h = 1.85 m
angle of inclination, θ = 26.5⁰
Part A
Apply the principle of conservation of Energy;
sum of initial potential energy and initial kinetic energy = sum of final potential energy, final kinetic energy and work lost due to friction.
Initial kinetic energy is zero, since the seal slides from rest.
Final potential energy is zero, at the end of the ramp, height is zero.
The equation above reduces to;
Mgh = ¹/₂Mv² + Wf
Wf = Mgh - ¹/₂Mv²
Wf = (116 x 9.8 x 1.85) - (¹/₂ x 116 x 4.1²)
Wf = 2103.08 - 974.98 = 1128.1 J
Thus, work done by friction, Wf = 1128.1 J
Part B
work done by friction, Wf = Frictional force x distance moved by the seal down the slope
Wf = Fk x d
Wf = μmgcosθ x d
d is the slope of the inclined ramp to the horizontal, this calculated using trigonometry ratio;
d (slope) = h/sinθ
d = 1.85/sin26.5
d = 4.146 m
Wf = μmgcosθ x d
1128.1 = μ x 116 x 9.8 x cos(26.5) x 4.146
1128.1 = μ x 4217.98
μ = 1128.1 / 4217.98
μ = 0.268
Thus, the coefficient of kinetic friction between the seal and the ramp is 0.268