A cylinder has inner and outer radii of #16 cm# and #24 cm#, respectively, and a mass of #3 kg#. If the cylinder's frequency of rotation about its center changes from #2 Hz# to #4 Hz#, by how much does its angular momentum change?

Question

979 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2017-10-26T11:18:13

The change in angular momentum is #=1.57kgm^2s^-1#

The angular momentum is #L=Iomega#

and #omega# is the angular velocity

The mass of the cylinder is #m=3kg#

The radii of the cylinder are #r_1=0.16m# and #r_2=0.24m#

For the cylinder, the moment of inertia is #I=m(r_1^2+r_2^2)/2#

So, #I=3*(0.16^2+0.24^2)/2=0.1248kgm^2#

The change in angular velocity is

#Delta omega=Deltaf*2pi=(4-2)*2pi=4pirads^-1#

The change in angular momentum is

#DeltaL=IDelta omega=0.1248 xx4pi=1.57kgm^2s^-1#