A 12.0-kg box resting on a horizontal, frictionless surface is attached to a 5.0
ID: 1602639 • Letter: A
Question
A 12.0-kg box resting on a horizontal, frictionless surface is attached to a 5.00-kg weight by a thin, light wire that passes without slippage over a frictionless pulley (the figure (Figure 1)) The pulley has the shape of a uniform solid disk of mass 1.90 kg and diameter 0 460 m After the system is released, find the acceleration of the box a = 2.73 m/s^2 After the system is released find magnitude of the horizontal and vertical components of the force that the axle exerts on the pulley. Express your answers separated by a comma.Explanation / Answer
mass of pulley ( solid disk) = 1.90kg
radius= diameter/2 = 0.460 / 2 = 0.230 m
moment of inertia=(1/2mr^2) = 0.5*2*(0.230)^2 = 0.0529 kg-m^2
mass of box = M = 12 kg
acceleration of box = a
net force on box = ma
but net force on box = tension in horizontal portion of wire = Th
Th = 12a ......................(1)
tension in vertical portion of wire = Tv
weight suspended = mg = 5*9.8 = 49 N
net force on suspended weight = 49 - Tv
but net force on suspended weight = ma = 5a
49 - Tv = 5a
Tv = 49 - 5a ....................(2)
If alpha is angular acceleration of pulley,
alpha = linear acceleration / radius = a/0.230
Net torque = [ Tv -Th]*r = [Tv - Th ]0.230
Net torque = [49 - 5a - 12a ]0.23
Net torque = [49 - 17a]0.230
but net torque = I alpha= Ia/r = 0.0529a / 0.230 = 0.230 a
0.230a = [49 - 17a]0.230 --------(3)
a = 2.7222 m/s^2
Th = 12a = 32.666 N
horizontal tension is 32.666 N
vertical tension = Tv = 49 - 5a = 35.388 N
vertical tension is 35.388 N
acceleration of box is 2.7222 m/s^2
magnitude of the horizontal component of the force F that the axle exerts on the pulley =Th = 32.666 N
magnitude of the vertical components of the force that the axle exerts on the pulley,
= Tv + weight of wheel = 35.388 + 18.62 = 54 N
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