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A supervised fault tolerant control architecture for nonlinear systems.

机译:非线性系统的监督容错控制体系结构。

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Scope. The growing complexity of physical plants and control missions inevitably leads to increasing occurrence, diversity and severity of faults. Availability, defined as the probability that a system or equipment will operate satisfactory and effectively at any point of time, becomes a factor of increasing importance. Fault Tolerant Control (FTC) is a field of research that aims to increase availability and reduce the risk of safety hazards and other undesirable consequences by specifically designing control algorithms capable of maintaining stability and/or performance despite the occurrence of faults. This report presents a novel FTC solution based on a hierarchical architecture in which an adaptive critic controller is overseen by a supervisor managing a dynamic model bank of fault solutions.; Findings and conclusions. The presented work has demonstrated that the implementation of a synergistic combination of a reconfigurable controller and a fault diagnosis and controller malfunction detection supervisor based on three distinct quality indexes generates an efficient and reliable FTC architecture. The application of adaptive critic designs as reconfigurable controllers is shown to give the hierarchical algorithm the degree of flexibility required to deal with both abrupt and incipient unknown changes in the plant dynamics due to faults. The proposed supervisor system is used to accelerate the convergence of the method by loading new initial conditions to the controller when the plant is affected by a known abrupt fault. Moreover, the developed fault diagnosis decision logic is capable of recognizing new fault scenarios and assimilating them online to the dynamic model bank, along with parameters for the corresponding controller. The introduction of the weight quality index has made possible to distinguish between faults in the plant and controller malfunctions caused by online training divergence or local minima convergence. In order to achieve application-specific key FTC specifications, a methodology for initializing and tuning twelve distinct parameters of the quality indexes was also developed. Finally, a series of key steps that form the basis for the fault development information extraction module capable of providing the probability of occurrence of future faults to the user, are also included in this report.
机译:范围。物理工厂和控制任务的日益复杂化不可避免地导致故障的发生,多样性和严重性的增加。可用性是指系统或设备在任何时间点都能令人满意且有效地运行的概率,它变得越来越重要。容错控制(FTC)是一个研究领域,旨在通过专门设计能够在发生故障时保持稳定性和/或性能的控制算法来提高可用性并降低安全隐患和其他不良后果的风险。该报告提出了一种基于分层体系结构的新颖FTC解决方案,其中自适应评论家控制器由管理故障解决方案动态模型库的主管监督。结论和结论。提出的工作表明,基于三个不同质量指标的可重配置控制器与故障诊断和控制器故障检测监控器的协同组合的实现产生了高效且可靠的FTC架构。自适应批评家设计作为可重构控制器的应用已显示出给分层算法一定程度的灵活性,以应对由于故障而导致的工厂动态中突然的和初期的未知变化。当工厂受到已知的突发故障影响时,通过将新的初始条件加载到控制器,可以使用拟议的监控系统来加速方法的收敛。而且,开发的故障诊断决策逻辑能够识别新的故障情况,并将其与相应控制器的参数一起在线吸收到动态模型库中。体重质量指数的引入使得区分在线培训差异或局部最小收敛引起的设备故障和控制器故障成为可能。为了实现特定于应用程序的关键FTC规范,还开发了一种用于初始化和调整质量指标的十二个不同参数的方法。最后,此报告中还包括一系列关键步骤,这些步骤构成了故障发展信息提取模块的基础,该模块能够为用户提供未来发生故障的可能性。

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