Passification-Based Robust Phase-Shift Control for Two-Rotor Vibration Machine

Author:

Andrievsky Boris12ORCID,Zaitceva Iuliia123ORCID,Barkana Itzhak4ORCID

Affiliation:

1. Control of Complex Systems Laboratory, Institute for Problems in Mechanical Engineering of Russian Academy of Sciences (IPME RAS), 61 Bol’shoy Pr. V.O., 199178 Saint Petersburg, Russia

2. Department of Applied Cybernetics, Faculty of Mathematics and Mechanics, Saint-Petersburg State University, Stary Peterhof, Universitetsky Prospekt, 198504 Saint Petersburg, Russia

3. Department of Automatic Control Systems, Saint Petersburg Electrotechnical University “LETI”, Professora Popova Str., 5, 197376 Saint Petersburg, Russia

4. BARKANA Consulting, Ramat-Hasharon 4720937, Israel

Abstract

In this paper, the solution to the problem of robust control of the phase shift during rotation at a given speed of the unbalanced rotors for a two-rotor vibratory machine is presented. The solution to this problem is relevant for the development of vibration technologies (for example, a vibro-transportation of bulk materials). The proposed controller includes two proportional-integral (PI) rotor speed controllers with a cross-coupling, which receive signals with opposite signs from the phase shift controller. Unlike previous works, where a PI controller for phase shift control was also taken, including the adaptive controller with an implicit reference model (IRM), in the present paper, a relay-type signal controller with an integral component without a parametric adaptation is used. This approach allows, while maintaining robustness, to increase the operation speed and accuracy of the control process, avoiding at the same time the possible divergence of the tunable parameters due to the influence of noises and disturbances caused, among other things, by vibrations of the setup’s structural elements and measurement errors. For the control law design, the speed-gradient method was employed. For various types of reference phase-shift signals (constant, harmonic, chaotic), the results of extensive experimental studies performed on the mechatronic vibration setup and the simulations accomplished based on the results of identifying the parameters of the stand drive model are presented in the paper. The obtained results confirm the efficiency and robustness of the proposed algorithm and allow one to reveal the system performance properties.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering

Reference63 articles.

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3. Experimental Analysis of the Oscillations of a Mechanical System with Self-synchronized Inertial Vibration Exciters;Panovko;J. Mach. Manuf. Reliab.,2015

4. To the issue of control resonant oscillations of a vibrating machine with two self-synchronizing inertial exciters;Gouskov;Lect. Notes Mech. Eng.,2021

5. Modelling the granular medium dynamics on rough vibrating plane using method of large particles;Lyan;IOP Conf. Ser. Mater. Sci. Eng.,2019

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