A long horizontal rod has a bead which can slide along its length and is initially placed at a distance L from one end A of the rod. The rod is set in angular motion about A with a constant angular acceleration $\alpha$. If the coefficient of friction between the rod and bead is $\mu$, and gravity is neglected, then the time after which the bead starts slipping is
- $\sqrt{\mu/\alpha}$
- $\frac{\mu}{\sqrt{\alpha}}$
- $\frac{1}{\sqrt{\mu \alpha }}$
- infinitesimal
The Correct Option is A
Solution and Explanation
Therefore,
$F_t - ma = m \alpha L = N$
$\therefore$ Limiting value of friction
$\hspace15mm (f_r)_{max}=\mu N=\mu m \alpha L\hspace15mm ...(i)$
Angular velocity at time t is $\omega=\alpha t$
$\therefore $Centripetal force at time t will be
$\hspace15mm F_c=mL \omega^2=mL\alpha^2 t^2\hspace15mm ...(ii)$
Equating Eqs. (i) and (ii), we get
$\hspace25mm t=\sqrt{\frac{\mu}{\alpha}}$
For $t > \sqrt{\frac{\mu}{\alpha}}, F > (f_r)_{max} i.e.$ the bead starts sliding.
In the figure, $F_t$ is perpendicular to the paper inwards.
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Concepts Used:
Laws of Motion
The laws of motion, which are the keystone of classical mechanics, are three statements that defined the relationships between the forces acting on a body and its motion. They were first disclosed by English physicist and mathematician Isaac Newton.
Newton’s First Law of Motion
Newton’s 1st law states that a body at rest or uniform motion will continue to be at rest or uniform motion until and unless a net external force acts on it.
Newton’s Second Law of Motion
Newton's 2nd law of motion deals with the relation between force and acceleration. According to the second law of motion, the acceleration of an object as built by a net force is directly proportional to the magnitude of the net force, in the same direction as the net force, and inversely proportional to the mass of the object.
Newton’s Third Law of Motion
Newton's 3rd law of motion states when a body applies a force on another body that there is an equal and opposite reaction for every action.