A dentist’s drill starts from rest. After 4.28 s of constant angular acceleration it turns at a rate of 28940 rev/min. Find the drill’s angular acceleration. Answer in units of …

Question

asked Apr 1, 2021 115k views

1 Answer

Zapcost · Answer 1 · 2021-04-07T10:39:08+0000

Answer:

Angular acceleration, is
$708.07\ rad/s^2$

Step-by-step explanation:

Given that,

Initial speed of the drill,
$\omega_i=0$

After 4.28 s of constant angular acceleration it turns at a rate of 28940 rev/min, final angular speed,
$\omega_f=28940\ rev/min=3030.58\ rad/s$

We need to find the drill’s angular acceleration. It is given by the rate of change of angular velocity.

$\alpha =(\omega_f)/(t)\\\\\alpha =(3030.58\ rad/s)/(4.28\ s)\\\\\alpha =708.07\ rad/s^2$

So, the drill's angular acceleration is
$708.07\ rad/s^2$ .