Three particles, each of mass $M$ , are situated at the vertices of an equilateral triangle of side $a$ . The only forces acting on the particles are their mutual gravitational forces. It is desired that each particle moves in a circle while maintaining their original separation $a$ . The initial velocity that should be given to each particle and the time period of circular motion is, respectively.

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Solution

Step 1: Given data
$Mass = M$
$side = a$
$θ = 60 °$
Step 2:To Find:
The initial velocity that should be given to each particle and the time period of circular motion.
Step 3: Calculate initial velocity
Gravitational force can be calculated using the formula given as,
$F = G \frac{m_{1} m_{2}}{r^{2}}$
Where, $G$ is the gravitational force, $m_{1}$ and $m_{2}$ are the masses, and $r$ is the distance between the center of the masses.
The resultant Gravitational force acting on each particle is:
$F = \sqrt{{(\frac{G m^{2}}{a^{2}})}^{2} + {(\frac{G m^{2}}{a^{2}})}^{2} + 2 (\frac{G m^{2}}{a^{2}}) (\frac{G m^{2}}{a^{2}}) \cos 60 °} = \sqrt{3} \frac{G m^{2}}{a^{2}}$
As per the figure on the right side, as the particles are expected to move in a circle of radius $r$ while maintaining original separation $a$ ,
$\frac{\frac{a}{2}}{r} = \cos 30 ° r = \frac{a}{\sqrt{3}}$
Centripetal force is balanced by resultant gravitational force.
$\frac{m v^{2}}{r} = \sqrt{3} \frac{G m^{2}}{a^{2}} \frac{\sqrt{3} m v^{2}}{a} = \sqrt{3} \frac{G m^{2}}{a^{2}} v = \sqrt{\frac{G m}{a}}$
Step 4: Calculate the time period
Calculate the time period as follows:
$T = \frac{Distance}{Velocity} T = \frac{2 π r}{v} . . . (1)$
Substitute the value of $v$ and $r$ in equation (1).
$T = \frac{2 π r}{v} = \frac{2 π a \sqrt{a}}{\sqrt{3} \times \sqrt{G m}} = 2 π \sqrt{\frac{a^{3}}{3 G m}}$
Therefore, the initial velocity and the time period will be $v = \sqrt{\frac{G m}{a}}$ and $T = 2 π \sqrt{\frac{a^{3}}{3 G m}}$ .

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