Zaher Ashraf A
Physics Department, Science College, Kuwait University, P.O. Box 5969, Safat 13060, Kuwait.
Chaos. 2008 Mar;18(1):013111. doi: 10.1063/1.2840779.
The dynamic behavior of a permanent magnet synchronous machine (PMSM) is analyzed. Nominal and special operating conditions are explored to show that the PMSM can experience chaos. A nonlinear controller is introduced to control these unwanted chaotic oscillations and to bring the PMSM to a stable steady state. The designed controller uses a pole-placement approach to force the closed-loop system to follow the performance of a simple first-order linear system with zero steady-state error to a desired set point. The similarity between the mathematical model of the PMSM and the famous chaotic Lorenz system is utilized to design a synchronization-based state observer using only the angular speed for feedback. Simulation results verify the effectiveness of the proposed controller in eliminating the chaotic oscillations while using a single feedback signal. The superiority of the proposed controller is further demonstrated by comparing it with a conventional PID controller. Finally, a laboratory-based experiment was conducted using the MCK2812 C Pro-MS(BL) motion control kit to confirm the theoretical results and to verify both the causality and versatility of the proposed controller.
分析了永磁同步电机(PMSM)的动态行为。探讨了标称和特殊运行条件,以表明永磁同步电机可能会出现混沌现象。引入了一种非线性控制器来控制这些不需要的混沌振荡,并使永磁同步电机达到稳定的稳态。所设计的控制器采用极点配置方法,迫使闭环系统跟踪一个简单的一阶线性系统的性能,该系统对期望设定点的稳态误差为零。利用永磁同步电机数学模型与著名的混沌洛伦兹系统之间的相似性,仅使用角速度作为反馈来设计基于同步的状态观测器。仿真结果验证了所提出的控制器在使用单个反馈信号时消除混沌振荡的有效性。通过将所提出的控制器与传统的PID控制器进行比较,进一步证明了其优越性。最后,使用MCK2812 C Pro-MS(BL)运动控制套件进行了基于实验室的实验,以确认理论结果,并验证所提出控制器的因果关系和通用性。