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Identification and fault diagnosis of a simulated model of an industrial gas turbine

机译:工业燃气轮机仿真模型的辨识与故障诊断

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In this study, a model-based procedure exploiting analytical redundancy for the detection and isolation of faults of a gas turbine system is presented. The diagnosis scheme is based on the generation of so-called "residuals" that are errors between estimated and measured variables of the process. The work is completed under both noise-free and noisy conditions. Residual analysis and statistical tests are used for fault detection and isolation, respectively. The final section shows how the actual size of each fault can be estimated using a multilayer perceptron neural network used as a nonlinear function approximator. The proposed fault detection and isolation tool has been tested on a single-shaft industrial gas turbine model.
机译:在这项研究中,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系统的故障。诊断方案基于所谓的“残差”的生成,这些残差是过程的估计变量与测量变量之间的误差。该工作在无噪音和高噪音条件下完成。残差分析和统计测试分别用于故障检测和隔离。最后一部分显示了如何使用多层感知器神经网络(用作非线性函数逼近器)估算每个故障的实际大小。提出的故障检测和隔离工具已在单轴工业燃气轮机模型上进行了测试。

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