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Enhanced chiller sensor fault detection, diagnosis and estimation using wavelet analysis and principal component analysis methods

机译:使用小波分析和主成分分析方法的增强型冷水机组传感器故障检测,诊断和估计

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摘要

An enhanced sensor fault detection, diagnosis and estimation (FDD&E) strategy is developed for centrifugal chillers using wavelet analysis method and principal component analysis (PCA) method. A number of sensors of concern in chiller system monitoring and control are assigned into a PCA model, which can group these correlated variables and capture the systematic variations of chillers. Raw measurements or simple processing measurements of sensors may deteriorate the performance of sensor FDD&E strategy using PCA because of the embodied noises and dynamics. Wavelet analysis can extract the approximations of sensor measurements by separating noises and dynamics. Using these approximation coefficients for PCA modeling we can improve the capability and reliability of fault detection and diagnosis as well as the accuracy of sensor fault estimation. This wavelet-PCA-based sensor FDD&E strategy was validated using field operation data of an existing centrifugal chiller plant while various sensor faults of different magnitudes were introduced. The results demonstrate that this strategy can produce better performance of sensor FDD&E in terms of fault detection ratio, diagnosis ratio and estimation accuracy by comparing with conventional PCA-based sensor FDD&E strategy using raw or simple processing measurements for PCA modeling.
机译:利用小波分析法和主成分分析法(PCA),为离心式制冷机开发了一种增强的传感器故障检测,诊断和估计(FDD&E)策略。在PCA模型中分配了许多冷水机系统监视和控制中的传感器,该传感器可以对这些相关变量进行分组并捕获冷水机的系统变化。传感器的原始测量或简单处理测量可能会由于使用的噪声和动态特性而降低使用PCA的传感器FDD&E策略的性能。小波分析可以通过分离噪声和动力学来提取传感器测量值的近似值。使用这些近似系数进行PCA建模,我们可以提高故障检测和诊断的能力和可靠性,以及传感器故障估计的准确性。这种基于小波PCA的传感器FDD&E策略已通过使用现有离心式冷却器工厂的现场运行数据进行了验证,同时引入了各种幅度不同的传感器故障。结果表明,与使用PCA建模的原始或简单处理测量结果的基于PCA的常规传感器FDD&E策略相比,该策略可以在故障检测率,诊断率和估计精度方面产生更好的传感器FDD&E性能。

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