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首页> 外文期刊>Journal of Computational and Applied Mathematics >Comparison of adaptive filters for gas turbine performance monitoring
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Comparison of adaptive filters for gas turbine performance monitoring

机译:燃气轮机性能监测自适应滤波器的比较

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摘要

Kalman filters are widely used in the turbine engine community for health monitoring purpose. This algorithm has proven its capability to track gradual deterioration with a good accuracy. On the other hand, its response to rapid deterioration is either a long delay in recognising the fault, and/or a spread of the estimated fault in several components. The main reason of this deficiency lies in the transition model of the parameters that assumes a smooth evolution of the engine's condition. The aim of this contribution is to compare two adaptive diagnosis tools that combine a Kalman filter and a secondary system that monitors the residuals. This auxiliary component implements on one hand a covariance matching scheme and on the other hand a generalised likelihood ratio test to improve the behaviour of the diagnosis tool with respect to abrupt faults.
机译:卡尔曼过滤器广泛用于涡轮发动机社区,以进行健康监测。该算法已证明其具有良好的跟踪渐进恶化的能力。另一方面,其对快速恶化的响应要么是识别故障中的长时间延迟,要么是估计故障在多个组件中的传播。这种缺陷的主要原因在于参数的过渡模型,该模型假定发动机工况平稳发展。这项贡献的目的是比较两个自适应诊断工具,这些工具将卡尔曼滤波器与监视残差的辅助系统相结合。该辅助组件一方面实现协方差匹配方案,另一方面实现广义似然比测试,以改善诊断工具针对突发故障的行为。

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