NEET Physics NLM, Friction, Circular Motion NEET PYQ-NLM Friction Circular Motion

Two particles A and B are connected by a rigid rod AB. The rod slides along perpendicular rails as shown here. The velocity of A to the right is \[10\text{ }m/s\]. What is the velocity of B when angle\[\alpha ={{60}^{o}}\]? [AIPMT 1998]

A) 9.8 m/s

B) 10 m/s

C) 5.8 m/s

D) 17.3 m/s

Correct Answer: D

Solution :

Let the velocity along x and y axes be \[{{v}_{x}}\] and \[{{v}_{y}}\]respectively.

\[\therefore \] \[{{v}_{x}}=\frac{dx}{dt}\] and \[{{v}_{y}}=\frac{dy}{dy}\]

From figure,

\[\tan \alpha =\frac{y}{x}\]

\[\Rightarrow \] \[y=x\tan \alpha \]

Differentiating Eq. (i) w.r.t. \[t\], we get

\[\frac{dy}{dt}=\frac{dx}{dt}\tan \alpha \]

\[\Rightarrow \] \[{{v}_{y}}={{v}_{x}}\tan \alpha \]

Here, \[{{v}_{x}}=10\,m/s\,,\,\alpha ={{60}^{o}}\]

\[\therefore \] \[{{v}_{y}}=10\,\tan {{60}^{o}}=10\sqrt{3}=17.3\,m/s\]