8 ROTATIONAL MOTION 8.11 Combined translational and rotational motion
The angular equation of motion of the pulley is written
I ω ̇ = τ,where I is its moment of inertia, and τ is the torque acting on the pulley. Now, the
only force acting on the pulley (whose line of action does not pass through the
pulley’s axis of rotation) is the tension in the cable. The torque associated with
this force is the product of the tension, T, and the perpendicular distance from
the line of action of this force to the rotation axis, which is equal to the radius, b,
of the pulley. Hence,
τ = T b.
If the cable does not slip with respect to the pulley, then its downward velocity, v,
must match the tangential velocity of the outer surface of the pulley, b ω. Thus,v = b ω.It follows that
̇v = b ω ̇.The above equations can be combined to givėv =g
,
1 + I/m b^2
m g
T =
1 + m b^2 /I.Now, the moment of inertia of the pulley is I = (1/2) M b^2. Hence, the above
expressions reduce to
̇v =g1 + M/2 m
m g
T =
1 + 2 m/M9.81
=
1 + 6.4/2 × 2.6=2.6 × 9.81
1 + 2 × 2.6/6.4= 4.40 m/s^2 ,= 14.07 N.Worked example 8.5: Hinged rod
Question: A uniform rod of mass m = 5.3 kg and length l = 1.3 m rotates about a
fixed frictionless pivot located at one of its ends. The rod is released from rest at