Answer:
Magnitude of force on wheel B is 4 N
Explanation:
Given that
[tex]I=mr^2[/tex]
For wheel A
m= 1 kg
d= 1 m,r= 0.5 m
F=1 N
We know that
T= F x r
T=1 x 0.5 N.m
T= 0.5 N.m
T= I α
Where I is the moment of inertia and α is the angular acceleration
[tex]I_A=1 \times 0.5^2\ kg.m^2[/tex]
[tex]I_A=0.25\ kg.m^2[/tex]
T= I α
0.5= 0.25 α
[tex]\alpha = 2\ rad/s^2[/tex]
For Wheel B
m= 1 kg
d= 2 m,r=1 m
[tex]I_B=1 \times 1^2\ kg.m^2[/tex]
[tex]I_B=1 \ kg.m^2[/tex]
Given that angular acceleration is same for both the wheel
[tex]\alpha = 2\ rad/s^2[/tex]
T= I α
T= 1 x 2
T= 2 N.m
Lets force on wheel is F then
T = F x r
2 = F x 1
So F= 2 N
Magnitude of force on wheel B is 2 N
