A cylinder has inner and outer radii of #12 cm# and #18 cm#, respectively, and a mass of #6 kg#. If the cylinder's frequency of rotation about its center changes from #9 Hz# to #8 Hz#, by how much does its angular momentum change?

1 Answer
Narad T.
May 29, 2017

The angular momentum changes by #=0.88kgm^2s^-1#

Explanation:

The angular momentum is #L=Iomega#

where #I# is the moment of inertia

Mass, #m=6kg#

For a cylinder, #I=m((r_1^2+r_2^2))/2#

So, #I=6*((0.12^2+0.18^2))/2=0.1404kgm^2#

The change in angular momentum is

#DeltaL=IDelta omega#

The change in angular velocity is

#Delta omega=(9-8)*2pi=(2pi)rads^-1#

The change in angular momentum is

#DeltaL=0.1404*2pi=0.88kgm^2s^-1#

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