When the play button is pressed, a CD accelerates uniformly from rest to 430 rev/min in 4.0 revolutions. If the CD has a radius of 7.0 cm and a mass of 17 g , what is the torque exerted on it? - QAmmunity.org

When the play button is pressed, a CD accelerates uniformly from rest to 430 rev/min in 4.0 revolutions. If the CD has a radius of 7.0 cm and a mass of 17 g , what is the torque exerted on it?

asked Feb 1, 2021 116k views

1 Answer

Answer:

The net torque exerted on CD is
$1.680 * 10^(-3)\,N\cdot m$ .

Step-by-step explanation:

As CD is acceleration uniformly, the following equation of motion can be used to determine the angular acceleration:

$\dot n^(2) = \dot n_(o)^(2) + 2\cdot \ddot n \cdot \Delta n$

Where:

$\dot n_(o)$ - Initial angular speed, measured in revolutions per minute.

$\dot n$ - Final angular speed, measured in revolutions per minute.

$\ddot n$ - Angular acceleration, measured in revolution per square minute.

$\Delta n$ - Change in angular position, measured in revolutions.

The angular acceleration is cleared and calculated:

$\ddot n = (\dot n^(2)-\dot n_(o)^(2))/(2\cdot \Delta n)$

Given that
$\dot n_(o) = 0\,(rev)/(min)$ ,
$\dot n = 430\,(rev)/(min)$ and
$\Delta n = 4\, rev$ , the angular acceleration is:

$\ddot n = (\left(430\,(rev)/(min) \right)^(2)-\left(0\,(rev)/(min) \right)^(2))/(2\cdot (4\,rev))$

$\ddot n = 23112.5\,(rev)/(min^(2))$

The angular accelaration measured in radians per square second is:

$\alpha = \left(23112.5\,(rev)/(min^(2)) \right)\cdot \left(2\pi\,(rad)/(rev)\right)\cdot \left((1)/(3600)\,(min^(2))/(s^(2)) \right)$

$\alpha \approx 40.339\,(rad)/(s^(2))$

Net torque experimented by the CD during its accleration is equal to the product of its moment of inertia with respect to its axis of rotation and angular acceleration:

$\tau = I \cdot \alpha$

Where:

- Moment of inertia, measured in
$kg \cdot m^(2)$ .

$\alpha$ - Angular acceleration, measured in radians per square second.

In addition, a CD has a form of a uniform disk, whose moment of inertia is:

$I = (1)/(2)\cdot m \cdot r^(2)$

Where:

- Mass of the CD, measured in kilograms.

- Radius of the CD, measured in meters.

If
$m = 0.017\,kg$ and
$r = 0.07\,m$ , then:

$I = (1)/(2)\cdot (0.017\,kg)\cdot (0.07\,m)^(2)$

$I = 4.165* 10^(-5)\,kg\cdot m^(2)$

Now, the net torque exerted on CD is:

$\tau = (4.165* 10^(-5)\,kg\cdot m^(2))\cdot \left(40.339\,(rad)/(s^(2)) \right)$

$\tau = 1.680* 10^(-3)\,N\cdot m$

The net torque exerted on CD is
$1.680 * 10^(-3)\,N\cdot m$ .

Anna Fortuna answered Feb 7, 2021

by Anna Fortuna

4.9k points

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