A solid disk with a radius of $3 m$ $3 m$ and mass of $4 k g$ $4 kg$ is rotating on a frictionless surface. If $120 W$ $120 W$ of power is used to increase the disk's rate of rotation, what torque is applied when the disk is rotating at $8 H z$ $8 Hz$ ?

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A solid disk with a radius of $3 m$ $3 m$ and mass of $4 k g$ $4 kg$ is rotating on a frictionless surface. If $120 W$ $120 W$ of power is used to increase the disk's rate of rotation, what torque is applied when the disk is rotating at $8 H z$ $8 Hz$ ?

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Answer 1 · 2016-11-19T14:49:11

The torque applied is 2.38 N-m.

Explanation:

This goes very simple, Power is the product of the torque and angular velocity, similar to $P = F v$ $P=Fv$ .
$\Rightarrow P = τ ω$ $=>P=tauomega$
So here angular acceleration comes with $ω = 2 π ν$ $omega=2pinu$ .
Calculating the angular velocity with given frequency we get,
$ω = 50.24 r a d s^{- 1}$ $omega=50.24rads^-1$
Now the above power equation becomes
$\Rightarrow τ = \frac{P}{ω}$ $=>tau=P/omega$
Substituting the given values we get,
$τ = \frac{120 W}{50.24 r a d s^{- 1}}$ $tau=(120W)/(50.24rads^-1)$ .

$:. tau=2.38$ Newtons-metre.

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A solid disk with a radius of $3 m$ $3 m$ and mass of $4 k g$ $4 kg$ is rotating on a frictionless surface. If $120 W$ $120 W$ of power is used to increase the disk's rate of rotation, what torque is applied when the disk is rotating at $8 H z$ $8 Hz$ ?

1 Answer

Explanation:

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Math

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A solid disk with a radius of 3 m3m3 m and mass of 4 kg4kg4 kg is rotating on a frictionless surface. If 120 W120W120 W of power is used to increase the disk's rate of rotation, what torque is applied when the disk is rotating at 8 Hz8Hz8 Hz?

1 Answer

Explanation:

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A solid disk with a radius of $3 m$ $3 m$ and mass of $4 k g$ $4 kg$ is rotating on a frictionless surface. If $120 W$ $120 W$ of power is used to increase the disk's rate of rotation, what torque is applied when the disk is rotating at $8 H z$ $8 Hz$ ?