基于哈密顿模型的机电执行器控制算法

W. Burlikowski, Ł. Kohlbrenner, Z. Kowalik
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引用次数: 1

摘要

本文介绍了一种基于电机在dq0参考系中描述的哈密顿数学模型的电机控制算法。该算法特别适用于同步磁阻电机的控制。该算法将直轴和交轴上的磁链值作为状态变量。利用上述模型估计了磁链值和电磁转矩。该算法分为两种模式,一种是确保快速达到所要求的角速度,另一种是确保获得所需角速度后驱动器的稳定运行。在控制算法中使用的附加准则是最小化相绕组中的欧姆损耗。本文还介绍了驱动控制器在测量结果的基础上建立所需数学模型的方法。通过数值实验验证了该算法的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hamiltonian model based control algorithm for electromechanical actuator
In the paper a control algorithm of an electrical machine, that is based on its hamiltonian mathematical model described in the dq0 reference frame, is introduced. The algorithm is designed to be specifically useful to control Synchronous Reluctance Machines. In the algorithm flux linkage values in the direct and quadrature axis are treated as state variables. Those flux linkage values and the electromagnetic torque are estimated using the aforementioned model. The algorithm is divided into two modes, first to ensure fast reaching of the commanded angular velocity and second to ensure stable operation of the drive when it is obtained. Additional criterion used in the control algorithm is to minimize the ohmic losses in the phase windings. In the paper the way of formulation of the needed mathematical model by the drive controller, based on the measurement results, is also presented. The performance of the algorithm is examined numerically.
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