A uniform rod of length |RIGID BODY DYNAMICS|JEE-MAIN 2020

JEE-MAIN 2020

03-09-2020 S2

Question

A uniform rod of length ' $l$ ' is pivoted at one of its ends on a vertical shaft of negligible radius. When the shaft rotates at angular speed $\omega$ the rod makes an angle $\theta$ with it (see figure). To find $\theta$ equate the rate of change of angular momentum (direction going into the paper) $\frac{\mathrm{ml}}{12} \omega^2 \sin \theta \cos \theta$ about the centre of mass (CM) to the torque provided by the horizontal and vertical forces FH and FV about the CM . The value of $\theta$ is then such that

Select the correct option:

$\cos \theta=\frac{\mathrm{g}}{\mathrm{I} \omega^2}$

$\cos \theta=\frac{2 \mathrm{~g}}{31 \omega^2}$

$\cos \theta=\frac{\mathrm{g}}{21 \omega^2}$

$\cos \theta=\frac{3 \mathrm{~g}}{21 \omega^2}$

✓ Correct! Well done.

✗ Incorrect. Try again or view the solution.

Solution