利用基于 Lyapunov 的数据丢失模型预测对联网永磁同步电机进行混沌控制

IF 1.8 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Mohammad Tahmasbi
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引用次数: 0

摘要

本研究采用基于 Lyapunov 的模型预测方法,研究了永磁同步电机(PMSM)在数据丢失情况下的混沌控制。PMSM 是一种丰富的非线性动态系统,当其参数处于某一区域时,会表现出混沌行为。因此,在这种情况下系统的性能会下降。此外,在一些网络化应用中,尤其是在现代自动化行业中,数据可能会在传感器-控制器和控制器-执行器链路上丢失。这将导致系统出现混沌行为。因此,通过假设 PMSM 在数据丢失的情况下,应用基于 Lyapunov 的预测模型来控制 PMSM 在数据丢失情况下的混乱。结果表明,如果系统状态不可用或系统面临数据丢失,PMSM 系统也能有效控制。讨论了在这些条件下控制混沌的充分条件。最后,通过模拟 PMSM 的非线性模型,评估了该方法对控制性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Chaos control in networked permanent magnet synchronous motor using Lyapunov-based model predictive subject to data loss

Chaos control in networked permanent magnet synchronous motor using Lyapunov-based model predictive subject to data loss

This study investigates the chaos control in the permanent magnet synchronous motor (PMSM) using a Lyapunov-based model predictive approach subject to data loss. PMSM, as a rich nonlinear dynamic, can demonstrate chaotic behavior when its parameters are in a certain area. Thus, the performance of the system will degrade in this condition. Moreover, in some networked applications, especially in the modern automation industry, data can be lost at the sensor-controller and controller-actuator links. It will lead the system to illustrate the chaotic behavior. Thus, by assuming a PMSM under data loss, a Lyapunov-based predictive model is applied to control the chaos in the PMSM in the presence of data loss. It shows that the PMSM system also be effective if the states of the system are not available or the system faces data loss. Sufficient conditions are discussed for the control of chaos in these conditions. Finally, the influence of the method on the control performance is evaluated via simulations on a nonlinear model for the PMSM.

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CiteScore
5.10
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