Rotational Kinetic Energy

A fan weighing 10kg has three blades, where each blade is 0.5 m long and weighs 1kg. The blades are rotating about an axis that is perpendicular to their length. The moment of inertia of each blade can be found using the formula of a thin rod, where m is the mass and l is the length of each rod.

\[I_{blade} = \frac{m_{blade} \cdot r^2}{3}\]

a) What is the rotational kinetic energy of the blades when they are rotating at a rate of 70rpm?

b) What is the translational kinetic energy of the fan when it moves at 0.5 m/s horizontally? Find the ratio of translational to rotational kinetic energy.

Solution (a)

We utilise the rotational kinetic energy formula derived above.

\[E_r = \frac{1}{2} \cdot I \cdot \omega^2\]

However, the rotation rate was given in rpm instead of rad/s, as required in the formula. Therefore, the rotational speed must be converted into rad/s. One rotation per minute is equal to 2π radians per 60 seconds.

\[\omega = \frac{70 rpm}{1 min} \cdot \frac{2 \pi rad}{1 rev} \cdot \frac{1 min}{60 s} = 7.33 rad/s\]

Then, we can calculate the moment of inertia of each blade using the formula provided.

\[I_{blade} = \frac{m \cdot r^2}{3} = \frac{1 kg \cdot (0.5 m)^2}{3} = 0.0833 kgm^2\]

We multiply by the number of blades to find the moment of inertia of all blades.

\[I = 3 \cdot 0.0833 kgm^2 = 0.25 kgm^2\]

A disk with a radius of 0.5 m and a mass of 2 kg is rotating with a translational speed of 18 m/s. Find the moment of inertia and the rotational kinetic energy.

We begin by using the relation concerning translational and linear velocities in order to find angular velocity.

\[v = \omega \cdot r\]

If we substitute the given variables in the equation above, we get the following value for angular velocity:

\[\omega = \frac{v}{r} = \frac{18 m/s}{0.5 m} = 36 rad/s\]

In order to calculate the rotational kinetic energy, we first calculate the moment of inertia of the disk:

\[I = mr^2 = 2 kg \cdot (0.5 m)^2 = 0.5 kgm^2\]

By substituting the moment of inertia in the rotational kinetic energy formula, we get:

\[E_r = \frac{1}{2} \cdot I \cdot \omega^2 = \frac{1}{2} \cdot 0.5 kgm^2 \cdot (36 rad/s)^2 = 324 J\]

A 0.3 kg ball is thrown into the air with a horizontal velocity of 10.0 m/s. It is rotating at a rate of 5 rad/s. The formula of the moment of inertia of the ball is given by the formula below, where m is the mass, and r is the radius of the ball that is equal to 0.4 m.

\[I_{ball} = \frac{2}{5} \cdot m \cdot r^2\]

What is the total energy of the ball when it leaves the hand?

We utilise the formula of the moment of inertia.

\[I_{ball} = \frac{2}{5} \cdot m \cdot r^2 = \frac{2}{5} \cdot 0.3 kg \cdot (0.4 m)^2 = 0.0192 kgm^2\]

The rotational kinetic energy is found by substituting the moment of inertia into the formula.

\[E_r = \frac{1}{2} \cdot I \cdot \omega^2 = \frac{1}{2} \cdot 0.0192 kgm^2 \cdot (5 rad/s)^2 = 0.24 J\]

The translational kinetic energy is found by substituting the given values of mass and translational velocity in the translational energy formula.

\[E_t = \frac{1}{2} \cdot m \cdot v^2 = \frac{1}{2} \cdot 0.3 kg \cdot (10 m/s)^2 = 15J\]

The total energy is found by the sum of rotational and translational energy.

\[E_{total} = E_r + E_t = 0.24 J + 15 J = 15.24 J\]