Answer:
The magnitude of the applied torque is [tex]6.0\times10^{-2}\ N-m[/tex]
(e) is correct option.
Explanation:
Given that,
Mass of object = 3 kg
Radius of gyration = 0.2 m
Angular acceleration = 0.5 rad/s²
We need to calculate the applied torque
Using formula of torque
[tex]\tau=I\times\alpha[/tex]
Here, I = mk²
[tex]\tau=mk^2\times\alpha[/tex]
Put the value into the formula
[tex]\tau=3\times(0.2)^2\times0.5[/tex]
[tex]\tau=0.06\ N-m[/tex]
[tex]\tau=6.0\times10^{-2}\ N-m[/tex]
Hence, The magnitude of the applied torque is [tex]6.0\times10^{-2}\ N-m[/tex]
