MECHANICAL ROTATION STABILIZER

Author:

Pavlov Valentin1

Affiliation:

1. Vladimirskiy elektromehanicheskiy zavod

Abstract

The study objective is to find a mechanical analogue of cyclotron motion and to determine the structure of the corresponding device, which is appropriately called a stabilized rotator. The topic of speed stabilization is relevant. With cyclotron motion, the Lagrangian of an electron is twice as large as its kinetic energy. In terms of macromechanics, this corresponds to the equality of kinetic and potential energies. This condition is key to the possibility of generalizing cyclotron motion to mechanics. It follows from this that the composition of a stabilized rotator should include elements that are able to store both of these energy types. Such elements are the load and the spring. The natural rotation frequency of the stabilized rotator is strictly fixed (it does not depend on either the moment of inertia or the angular momentum) and remarkably coincides with the natural frequency of the pendulum with identical parameters. When the angular momentum changes, the radius and tangential velocity change (the rotation frequency does not change and is equal to its own). At zero torque moment in stationary mode, the rotation frequency of the stabilized rotator cannot be arbitrary and takes a single value. Just as when the pendulum is forced to swing, the frequency does not coincide with its own frequency, the rotation frequency of the stabilized rotator does not coincide with its own rotation frequency when loaded. A stabilized rotor can be used to control the natural oscillation frequency of a radial oscillator, although in this case it may have strong competition with mechatronic systems. On the contrary, as a rotation stabilizer, its competitive capabilities are undeniable and determined by the extremely simple design.

Publisher

Bryansk State Technical University BSTU

Reference10 articles.

1. Павлов В.Д. Теоремы об излучении заряда. Инженерная физика. 2021; 6:37–40. doi: 10.25791/infizik.6.2021.1213., Pavlov VD. Charge emission theorems. Engineering Physics. 2021;6:37–40. doi: 10.25791/infizik.6.2021.1213.

2. Павлов В.Д. Энергетика излучения электрического заряда и ее следствия. Известия Уфимского научного центра РАН. 2021; 4:5–8. doi: 10.31040/2222-8349-2021-0-4-5-8., Pavlov V.D. The energy of electric charge radiation and its consequences. Izvestiya Ufimskogo Nauchnogo Tsentra RAN. 2021;4:5-8. doi: 10.31040/2222-8349-2021-0-4-5-8.

3. Павлов В.Д. Математические модели резонансных и антирезонансных процессов. Вестник Уральского государственного университета путей сообщения. 2021; 1(49):17–27. doi: 10.20291/2079-0392-2021-1-17-27., Pavlov VD. Mathematical models of resonant and antiresonance processes. Herald of the Ural State University of Railway Transport. 2021;1(49):17–27. doi: 10.20291/2079-0392-2021-1-17-27.

4. Павлов В.Д. О неоднозначности механической мощности. Advanced Engineering Research. 2022; 1:24–29. https://doi.org/10.23947/2687-1653-2022-22-1-24-29., Pavlov VD. On the ambiguity of mechanical power. Advanced Engineering Research. 2022;1:24-29. Available from: https://doi.org/10.23947/2687-1653-2022-22-1-24-29

5. Павлов В.Д. Накопитель энергии транспортно-технологической машины с возможностью автоматического управления. Автоматизированные технологии и производства. 2021; 2(24):7–10., Pavlov VD. Energy storage of a transport and technological machine with the possibility of automatic control. Automated Technologies and Production. 2021;2(24):7-10.

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