8 ROTATIONAL MOTION 8.11 Combined translational and rotational motion
π2so
IJ =3 × 1.2^2
3= 1.44 kg m^2.The instantaneous angular velocity of the rod isω = 60 ×
180= 1.047 rad./s.Hence, the rod’s rotational kinetic energy is written
K =1
IJ ω^2 = 0.5 × 1.44 × 1.047^2 = 0.789 J.Worked example 8.4: Weight and pulley
Question: A weight of mass m = 2.6 kg is suspended via a light inextensible
cable which is wound around a pulley of mass M = 6.4 kg and radius b = 0.4 m.
Treating the pulley as a uniform disk, find the downward acceleration of the
weight and the tension in the cable. Assume that the cable does not slip with
respect to the pulley.
lleymgAnswer: Let v be the instantaneous downward velocity of the weight, ω the in-
stantaneous angular velocity of the pulley, and T the tension in the cable. Apply-
ing Newton’s second law to the vertical motion of the weight, we obtain
m ̇v = m g − T.b
puTweight