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Obsrver-based robust actuator fault isolation and identification for microsatellite attitude control systems

机译:基于obsrver的鲁棒执行器故障隔离和微卫星姿态控制系统的识别

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Purpose The purpose of this paper is to accomplish robust actuator fault isolation and identification for microsatellite attitude control systems (ACSs) subject to a series of space disturbance torques and gyro drifts. Design/methodology/approach For the satellite attitude dynamics with Lipschitz constraint, a multi-objective nonlinear unknown input observer (NUIO) is explored to accomplish robust actuator fault isolation based on a synthesis of H-inf techniques and regional pole assignment technique. Subsequently, a novel disturbance-decoupling learning observer ((DLO)-L-2) is proposed to identify the isolated actuator fault accurately. Additionally, the design of the NUIO and the (DLO)-L-2 are reformulated into convex optimization problems involving linear matrix inequalities (LMIs), which can be readily solved using standard LMI tools. Findings The simulation studies on a microsatellite example are performed to prove the effectiveness and applicability of the proposed robust actuator fault isolation and identification methodologies. Practical implications This research includes implications for the enhancement of reliability and safety of on-orbit microsatellites. Originality/value This study proposes novel NUIO-based robust fault isolation and (DLO)-L-2-based robust fault identification methodologies for spacecraft ACSs subject to a series of space disturbance torques and gyro drifts.
机译:目的本文的目的是完成经过一系列空间干扰扭矩和陀螺漂移的微卫星姿态控制系统(ACSS)的强大执行器故障隔离和识别。探讨了卫星姿态动态的设计/方法/方法,利用Lipschitz约束,探讨了一种基于H-INF技术的合成和区域极指定技术的鲁棒致动器故障隔离来完成多目标非线性未知输入观察者(NUIO)。随后,提出了一种新的扰动去耦学习观察者((DLO)-L-2),以准确地识别隔离的执行器故障。另外,NUIO和(DLO)-L-2的设计被重新重整为涉及线性矩阵不等式(LMI)的凸优化问题,这可以使用标准LMI工具容易地解决。调查结果,进行微卫星示例的仿真研究,以证明提出的鲁棒致动器故障隔离和识别方法的有效性和适用性。实际意义这项研究包括对增强轨道微卫星的可靠性和安全性的影响。原创性/值本研究提出了基于新的基于Nuio的鲁棒故障隔离和基于瓦斯的鲁棒故障识别方法,用于航天器ACSS,受到一系列空间干扰扭矩和陀螺漂移。

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