Development of an experimental plant and a numerical model of an axial magnetic rotor suspension

M. Benedyuk, A. Lomachev, R. Badykov, K. V. Bezborodova, A. Yurtaev
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Abstract

This article presents the results of the work on the creation of an experimental plant, its testing, as well as the development of a computational model of a rotor magnetic suspension with the use of axial electromagnets. The main purpose of producing the plant was to test the results of the developed numerical finite element model. An automatic control system was developed for the experimental installation. The electrical circuit was assembled on the basis of a ESP32 microcontroller with a clock frequency of 240 MHz and a PWM with a capacity of 10 bits. A PID-regulator program was developed. The coefficients kP, kD, kI used in the code of the electronic control system program (PID-controller) were selected. An experimental study of the bearing capacity of the axial active magnetic bearing under the influence of an external axial force was conducted. The required power of the axial active magnetic bearing was determined. The maximum load-bearing capacity of the installation for the selected coefficients of the PID-controller was determined. An axisymmetric finite-element model of the axial active magnetic bearing was created in the open-source program FEMM 4.2. The load-bearing capacity of the installation for a given current intensity value was calculated. The results of the numerical modelling were compared with the experimental data obtained. The basic principles of creation and operation of the experimental plant and its numerical model are outlined.
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轴向磁转子悬架实验装置及数值模型的建立
本文介绍了工作的结果,建立了一个实验工厂,它的测试,以及转子磁悬浮与轴向电磁铁的使用计算模型的发展。生产工厂的主要目的是测试开发的数值有限元模型的结果。为实验装置研制了自动控制系统。电路以时钟频率为240 MHz的ESP32微控制器和容量为10位的PWM为基础进行组装。开发了pid调节器程序。选取了电子控制系统程序(pid控制器)代码中使用的kP、kD、kI系数。对轴向主动磁轴承在轴向外力作用下的承载能力进行了试验研究。确定了轴向主动磁轴承所需功率。确定了所选pid控制器系数下装置的最大承载能力。利用开源软件FEMM 4.2建立了轴向主动磁轴承的轴对称有限元模型。计算了给定电流强度值下装置的承载能力。数值模拟结果与实验数据进行了比较。概述了实验装置的建立和运行的基本原理及其数值模型。
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