Question

An object with a mass of `3 kg` is traveling in a circular path of a radius of `7 m`. If the object's angular velocity changes from `3 Hz` to `29 Hz` in `3 s`, what torque was applied to the object?

Answer 1

Use the basics of rotation around a fixed axis. Remember to use `rads` for the angle.

`τ=2548π(kg*m^2)/s^2=8004,78(kg*m^2)/s^2`

Explanation:

The torque is equal to:

`τ=I*a_(θ)`

Where `I` is the moment of inertia and `a_(θ)` is the angular acceleration.

The moment of inertia:

`I=m*r^2`

`I=3kg*7^2m^2`

`I=147kg*m^2`

The angular acceleration:

`a_(θ)=(dω)/dt`

`a_(θ)=(d2πf)/dt`

`a_(θ)=2π(df)/dt`

`a_(θ)=2π(29-3)/3((rad)/s)/s`

`a_(θ)=52/3π(rad)/s^2`

Therefore:

`τ=147*52/3πkg*m^2*1/s^2`

`τ=2548π(kg*m^2)/s^2=8004,78(kg*m^2)/s^2`