Answer:
Explanation:
Given
[tex]N_1=1 rev/s[/tex]
angular velocity [tex]\omega =2\pi N_1=6.284 rad/s[/tex]
Combined moment of inertia of stool,student and bricks [tex]=6\ kg.m^2[/tex]
Now student pull off his hands so as to increase its speed to suppose [tex]N_2[/tex] rev/s
[tex]\omega _2=2\pi N_2[/tex]
After Pulling off hands so final moment of inertia is
[tex]I_2=2\ kg-m^2[/tex]
Conserving angular momentum as no external torque is applied
[tex]I_1\omega _1=I_2\omega _2[/tex]
[tex]6\times 6.284=2\times \omega _2[/tex]
[tex]\omega _2=18.85\ rad/s[/tex]
[tex]N_2=3 rev/s[/tex]
