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To create artificial gravity, two compartments of the orbital station (mass ratio 1 : 2) were separated by a distance R from each other and spun around their common center of mass. Determine the time of complete rotation of the compartments if, in a more massive compartment, the artificial gravity is half the force of gravity on the Ground.

Solutions of Savchenko Problems in Physics

Aliaksandr Melnichenka
October 2023

    <h3 id="back-link"><a href="/#2.2">$\leftarrow$Back</a></h3>

    <h3> Statement </h3>
    <p>
        $2.2.23.$ To create artificial gravity, two compartments of the orbital station (mass ratio $1 : 2$) were separated by a distance $R$ from each other and spun around their common center of mass. Determine the time of complete rotation of the compartments if, in a more massive compartment, the artificial gravity is half the force of gravity on the Ground.
    </p>

    <h3>Solution</h3>
    <p>

Velocities of the system


- The force of gravity on the ground acting on an object of mass

- The force of gravity on a massive compartment

- The force of gravity on the less massive compartment

From the statement



Since centrifugal forces and are internal forces, they are equal to

Centripetal acceleration could be found as

From where

Alternatively

Then we find the rotation period as the ratio of the trajectory circle length to the velocity of the first body



    <h4>Answer</h4>
    <p>
        $$T=2\pi\sqrt{2R/3g}$$
    </p>
    <p style="text-align: right; font-style: italic; font-size: 14;">
      Almaskhan Arsen<br>
    </p>


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