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Commissioning of AHU sensors using principal component analysis method

机译:使用主成分分析法调试AHU传感器

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摘要

Principal component analysis (PCA) models are implemented for monitoring and fault detection and diagnosis (FDD) of air-handling units (AHUs), which is modified to solve the problems caused by the nonlinearity and variations in the environment. Independent heat balance and pressure-flow balance models are developed to reduce the effects of the system nonlinearity and to make the PCA method valid in different control modes. Sensor faults are detected and partly isolated using Q-statistic (square prediction error) and Q-contribution plot. Simulation tests are conducted to demonstrate the use of the PCA method for automatic commissioning of AHU monitoring instrumentations and to validate the PCA method in detecting and diagnosing the AHU sensor faults under various typical operating conditions.
机译:实现了用于空气处理单元(AHU)的监视,故障检测和诊断(FDD)的主成分分析(PCA)模型,并对其进行了修改以解决由非线性和环境变化引起的问题。开发了独立的热平衡和压力-流量平衡模型,以减少系统非线性的影响并使PCA方法在不同的控制模式下有效。使用Q统计量(平方预测误差)和Q贡献图检测并部分隔离传感器故障。进行仿真测试以证明PCA方法用于AHU监测仪器的自动调试,并验证PCA方法在各种典型操作条件下检测和诊断AHU传感器故障时的有效性。

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