异步电机无预磁化的机电不平衡振动模块矢量控制算法

G. M. Simakov, V. V. Topovskiy, I. A. Ilyenkov
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This article discusses the synthesis of a vector control system for an asynchronous motor without preliminary magnetization, and also considers algorithms for vector control of an electromechanical unbalanced vibration module without preliminary magnetization of the asynchronous motor. Aim. To develop a control structure for an asynchronous motor of an unbalanced vibration module. Introduce a division link into the management structure. Synthesize a speed controller, rotor flux linkage and two components of the stator current. Compensate for the EMF action in the channels of the transverse and longitudinal axis. Provide the control system with the ability to reverse the electric machine. Implement the simulation of the resulting system and conduct a study of the results obtained, having obtained dynamic characteristics. Methods. The vector control system is constructed in the form of a stabilization channel of the rotor flux linkage module and a channel for controlling the rotor rotation speed. To achieve the desired result, we introduce a nonlinear regulator of the division link type into the control structure. This will convert the nonlinear structure to linear. Let's compensate the EMF action in the channels of the transverse and longitudinal axis. Having realized the simulation of the obtained system, we will conduct a study of the results obtained, having obtained dynamic characteristics. Results. Structural modeling was carried out in the MATLAB/Simulink software package. For the purpose of a comparative assessment of the synthesis results of a control system with a torque regulator in the form of a division link, a subordinate control system will also be synthesized, which has similar parameters of the power unit. Conclusion. 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引用次数: 0

摘要

随着电子系统的发展,各种异步电动机的控制越来越高效和精确。这种发动机在世界各地都在使用,由这种机制执行的各种任务每天都在增加,对它们的需求也没有减少。如今,基于异步电动机的交流电力驱动系统正变得越来越普遍。这是由于感应电机的高可靠性、简单的设计和相对较低的成本,以及功率变换器技术的快速发展,使得制造各种类型的半导体变换器和可靠的电源成为可能。在大多数情况下,矢量控制系统是为预磁化电驱动而构建的。本文讨论了无预磁化异步电动机矢量控制系统的综合,并考虑了无预磁化异步电动机机电不平衡振动模块的矢量控制算法。的目标。研制了一种异步电动机非平衡振动模块的控制结构。在管理结构中引入划分环节。综合了调速控制器、转子磁链和定子电流两部分。补偿电动势作用在横向和纵向轴的通道。为控制系统提供反转电机的能力。对得到的系统进行仿真,并对得到的结果进行研究,得到了系统的动态特性。方法。矢量控制系统由转子磁链模块的稳定通道和转子转速控制通道构成。为了达到预期的效果,我们在控制结构中引入了分链型的非线性调节器。这将把非线性结构转换成线性结构。我们来补偿横轴和纵轴通道中的电动势作用。在对得到的系统进行仿真之后,我们将对得到的结果进行研究,得到系统的动态特性。结果。在MATLAB/Simulink软件包中进行结构建模。为了对以分节形式的转矩调节器的控制系统的综合结果进行比较评估,还将综合一个与动力单元参数相似的从属控制系统。结论。选择电机转矩作为输出坐标,可以大大简化感应电机的数学模型。除了异步电动机数学模型的特点外,在这项工作中还需要考虑振动模块作为负载的特点。在这种情况下,可以区分两个主要特征-电力驱动的飞轮质量的大惯性矩,以及阻力矩对转子旋转角度的正弦依赖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
VECTOR CONTROL ALGORITHMS FOR AN ELECTROMECHANICAL UNBALANCE VIBRATION MODULE WITHOUT PRELIMINARY MAGNETIZATION OF THE ASYNCHRONOUS MOTOR
With the development of electronic systems, the control of various asynchronous type electric motors is becoming more efficient and accurate. Such engines are used everywhere in the world, the variety of tasks performed by such mechanisms is growing every day, and the need for them is not decreasing. Nowadays, AC electric drive systems based on an asynchronous motor are becoming more widespread. This is due to the high reliability, simple design and relatively low cost of induction motors, as well as the rapid development of power converter technology, which makes it pos¬sible to create various types of semiconductor converters and reliable power supplies. In most cases, the vector control system is built for a pre-magnetized electric drive. This article discusses the synthesis of a vector control system for an asynchronous motor without preliminary magnetization, and also considers algorithms for vector control of an electromechanical unbalanced vibration module without preliminary magnetization of the asynchronous motor. Aim. To develop a control structure for an asynchronous motor of an unbalanced vibration module. Introduce a division link into the management structure. Synthesize a speed controller, rotor flux linkage and two components of the stator current. Compensate for the EMF action in the channels of the transverse and longitudinal axis. Provide the control system with the ability to reverse the electric machine. Implement the simulation of the resulting system and conduct a study of the results obtained, having obtained dynamic characteristics. Methods. The vector control system is constructed in the form of a stabilization channel of the rotor flux linkage module and a channel for controlling the rotor rotation speed. To achieve the desired result, we introduce a nonlinear regulator of the division link type into the control structure. This will convert the nonlinear structure to linear. Let's compensate the EMF action in the channels of the transverse and longitudinal axis. Having realized the simulation of the obtained system, we will conduct a study of the results obtained, having obtained dynamic characteristics. Results. Structural modeling was carried out in the MATLAB/Simulink software package. For the purpose of a comparative assessment of the synthesis results of a control system with a torque regulator in the form of a division link, a subordinate control system will also be synthesized, which has similar parameters of the power unit. Conclusion. The choice of the motor torque as the output coordinate makes it possible to significantly simplify the mathematical model of the induction motor. In addition to the features of the mathematical model of an asynchronous electric motor, in this work it is necessary to take into account the features of the vibration module as a load. In this case, two main features can be distinguished – a large moment of inertia of the flywheel masses of the electric drive, as well as a sinusoidal dependence of the moment of resistance on the angle of rotation of the rotor.
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