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Research on Model-Based Fault Diagnosis for a Gas Turbine Based on Transient Performance

机译:基于暂态性能的基于模型的燃气轮机故障诊断研究

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It is essential to monitor and to diagnose faults in rotating machinery with a high thrust–weight ratio and complex structure for a variety of industrial applications, for which reliable signal measurements are required. However, the measured values consist of the true values of the parameters, the inertia of measurements, random errors and systematic errors. Such signals cannot reflect the true performance state and the health state of rotating machinery accurately. High-quality, steady-state measurements are necessary for most current diagnostic methods. Unfortunately, it is hard to obtain these kinds of measurements for most rotating machinery. Diagnosis based on transient performance is a useful tool that can potentially solve this problem. A model-based fault diagnosis method for gas turbines based on transient performance is proposed in this paper. The fault diagnosis consists of a dynamic simulation model, a diagnostic scheme, and an optimization algorithm. A high-accuracy, nonlinear, dynamic gas turbine model using a modular modeling method is presented that involves thermophysical properties, a component characteristic chart, and system inertial. The startup process is simulated using this model. The consistency between the simulation results and the field operation data shows the validity of the model and the advantages of transient accumulated deviation. In addition, a diagnostic scheme is designed to fulfill this process. Finally, cuckoo search is selected to solve the optimization problem in fault diagnosis. Comparative diagnostic results for a gas turbine before and after washing indicate the improved effectiveness and accuracy of the proposed method of using data from transient processes, compared with traditional methods using data from the steady state.
机译:对于需要可靠信号测量的多种工业应用,具有高推重比和复杂结构的旋转机械故障的监视和诊断至关重要。但是,测量值包括参数的真实值,测量的惯性,随机误差和系统误差。这样的信号不能准确反映旋转机械的真实性能状态和健康状态。对于大多数当前的诊断方法,高质量的稳态测量是必需的。不幸的是,对于大多数旋转机械而言,很难获得这类测量结果。基于暂态性能的诊断是可以潜在解决此问题的有用工具。提出了一种基于暂态性能的基于模型的燃气轮机故障诊断方法。故障诊断由动态仿真模型,诊断方案和优化算法组成。提出了一种使用模块化建模方法的高精度,非线性,动态燃气轮机模型,该模型涉及热物理性质,组件特征图和系统惯性。使用此模型模拟了启动过程。仿真结果与现场运行数据之间的一致性表明了该模型的有效性以及暂态累积偏差的优势。此外,还设计了一种诊断方案来完成此过程。最后,选择杜鹃搜索来解决故障诊断中的优化问题。清洗前后的燃气轮机比较诊断结果表明,与使用稳态数据的传统方法相比,所提出的使用瞬时过程数据的方法具有更高的有效性和准确性。

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