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Fault diagnosis of an industrial gas turbine prototype using a system identification approach

机译:使用系统识别方法对工业燃气轮机原型进行故障诊断

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In this work, a model-based procedure exploiting analytical redundancy for the detection and isolation of faults on a gas turbine simulated process is presented. The main point of the paper consists of exploiting an identification scheme in connection with dynamic observer or filter design procedures for diagnostic purposes. Thus, black-box modelling and output estimation approaches to fault diagnosis are in particular advantageous in terms of solution complexity and performance achieved. Moreover, the suggested scheme is especially useful when robust solutions are considered for minimising the effects of modelling errors and noise, while maximising fault sensitivity. In order to experimentally verify the robustness of the solution obtained, the proposed FDI strategy has been applied to the simulation data of a single-shaft industrial gas turbine plant in the presence of measurement and modelling errors. Hence, extensive simulations of the test-bed process and Monte Carlo analysis are the tools for assessing experimentally the capabilities of the developed FDI scheme, when compared also with different data-driven diagnosis methods.
机译:在这项工作中,提出了一种基于模型的程序,该程序利用分析冗余来检测和隔离燃气轮机模拟过程中的故障。本文的重点在于利用与动态观察器或过滤器设计程序相关的识别方案进行诊断。因此,就解决方案的复杂性和所实现的性能而言,用于故障诊断的黑匣子建模和输出估计方法特别有利。此外,当考虑使用鲁棒的解决方案以最大程度地减少建模误差和噪声的影响,同时最大化故障敏感性时,建议的方案特别有用。为了通过实验验证所获得解决方案的鲁棒性,在存在测量和建模误差的情况下,将拟议的FDI策略应用于单轴工业燃气轮机厂的仿真数据。因此,当与不同的数据驱动诊断方法进行比较时,对试验台过程进行广泛的仿真和蒙特卡洛分析是通过实验评估已开发的FDI方案功能的工具。

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