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Isolation of parametric faults in continuous-time multivariable systems: a sampled data-based approach

机译:连续时间多变量系统中参数故障的隔离:一种基于数据的采样方法

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摘要

A novel approach is proposed towards on-line and real-time detection and isolation of parametric faults in a multivariable linear continuous-time (CT) system. The problem of fault detection and isolation (FDI) is formulated in terms of a CT state space model. Since parameters in a CT model usually have simple relationships with physical parameters of the system, isolating parametric faults in the CT model can lead to the isolation of undesired changes in the physical parameters. Isolating parametric faults is very challenging, because even in a linear time-invariant system, the fault model can be time-varying and random. To obtain a constant fault model, many existing parametric FDI schemes have to make unrealistical assumptions. Our proposed FDI approach can generate an optimal primary residual vector (PRV), in which the fault model is constant without making any assumptions. To isolate faults, the PRV is transformed into a set of structured residual vectors (SRVs), where one SRV is made insensitive to a specified subset of faults, but most sensitive to other faults. The proposed approach is successfully applied to detection and isolation of undesired changes in the physical parameters of a simulated continuously stirred tank process. [References: 37]
机译:提出了一种新颖的方法,用于多变量线性连续时间(CT)系统中的在线,实时检测和隔离参数故障。故障检测和隔离(FDI)问题是根据CT状态空间模型制定的。由于CT模型中的参数通常与系统的物理参数具有简单的关系,因此隔离CT模型中的参数故障可以导致隔离物理参数中不需要的更改。隔离参数故障非常具有挑战性,因为即使在线性时不变系统中,故障模型也可能随时间变化并且是随机的。为了获得恒定的故障模型,许多现有的参数FDI方案必须做出不切实际的假设。我们提出的FDI方法可以生成最佳的主残差矢量(PRV),其中故障模型是恒定的,无需进行任何假设。为了隔离故障,将PRV转换为一组结构化残差向量(SRV),其中使一个SRV对指定的故障子集不敏感,但对其他故障最敏感。所提出的方法已成功地应用于检测和隔离模拟的连续搅拌釜过程中物理参数的不期望的变化。 [参考:37]

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