控制理论(社会学)
观察员(物理)
李雅普诺夫函数
计算机科学
线性矩阵不等式
控制器(灌溉)
执行机构
趋同(经济学)
断层(地质)
国家观察员
理论(学习稳定性)
Lyapunov稳定性
国家(计算机科学)
故障检测与隔离
稳定性理论
基质(化学分析)
数学
控制系统
传输(电信)
线性系统
控制(管理)
指数稳定性
信号(编程语言)
功能(生物学)
班级(哲学)
分离原理
α-β滤光片
作者
Zijun Liu,Chao Sun,Sheng‐Juan Huang,Suhuan Yi
摘要
ABSTRACT This paper investigates the problems of fault estimation (FE) and fault‐tolerant control (FTC) for a class of singularly perturbed systems (SPSs) affected by unknown time‐varying delays, external disturbances, and actuator faults in a network environment under dual‐channel dynamic periodic event‐triggered. To improve the communication efficiency of network channels, two different dynamic periodic event‐triggered mechanisms (ETMs) with transmission delays are developed between the sensor to observer and the observer to controller, respectively. Meanwhile, the Zeno behavior is excluded due to periodic sampling. To achieve simultaneous estimation of system states and fault signals while addressing the problem of unknown time‐varying state delays, a novel event‐triggered state/fault observer is proposed. Then, an event‐triggered fault‐tolerant controller is designed based on the estimated information of the system state and fault signal to ensure the stability of the closed‐loop system. According to Lyapunov‐Krasovskii theorem and the free‐weighting matrix technique, sufficient conditions for the stability of the observer and the controller are presented in the form of linear matrix inequalities (LMIs), where a ‐dependent Lyapunov function is considered. The results demonstrate that the proposed observer and controller design strategies can effectively suppress external disturbances and ensure satisfactory estimation accuracy, convergence speed, as well as steady‐state response of FTC when faults occur for all . Finally, the feasibility of the proposed design method is validated through numerical examples.
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