控制理论(社会学)
同种类的
观察员(物理)
扰动(地质)
迭代学习控制
模式(计算机接口)
计算机科学
终端滑动模式
终端(电信)
整体滑动模态
电子速度控制
滑模控制
控制(管理)
控制工程
人工智能
物理
工程类
电气工程
非线性系统
古生物学
电信
量子力学
操作系统
热力学
生物
作者
Lin Yang,Jun Fang,Hui Jiang,Yinfeng Liu,Mingjia Zhou,Zheng Minli
标识
DOI:10.1088/1361-6501/ae09c4
摘要
Abstract This study presents a novel control strategy to address the problem of speed tracking control of permanent magnet synchronous motors (PMSM) for machines tools. It combines a P-type iterative learning disturbance observer and a superior integral terminal non-homogeneous super-twisting sliding mode controller. Firstly, the PMSM mathematical model is established with an unknown disturbance. Then, a P-type iterative learning disturbance observer is proposed to estimate the unknown disturbances of the system and compensate for them through feedforward compensation. This addresses the problem that both internal and external uncertainties can lead to the degradation of motor control performance. To improve the dynamic and steady-state performance of the speed control system, an improved integral terminal sliding mode controller is proposed, and the improved non-homogeneous super-twisting algorithm is used as the switching control law. Finally, the stability and convergence of the system are ultimately demonstrated by the Lyapunov theorem. It is demonstrated from simulation results that the control method can successfully reduce chattering while improving the robustness, speed tracking performance, and anti-interference capabilities of the system.
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