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Root cause analysis on changes in chiller performance using linear regression

机译:使用线性回归的冷却器性能变化的根本原因分析

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Gas District Cooling (GDC) plants, designed to be environmentally efficient, require frequent maintenances, in order to avoid corrosions or leakages from the chemical reactions in Steam Absorption Chillers (SACs) of the plant. However, most of the plant experts face difficulty that the positive and the negative effects from the SAC maintenances are not clear. This is because there are various metrics to indicate GDC SAC performance, but they don't have enough information to describe chiller internal conditions. The paper describes a method to detect the root cause of the GDC SAC performance changes. Specifically, (1) the chiller performance is modeled by linear regression on the performance related sensor data, and (2) the root cause is determined by time series analysis of the sensor contribution ratios to the performance in accordance of the concept of theory of constraints (TOC). Evaluations in Universiti Teknologi Petronas (UTP) GDC plant showed that the method determined the root cause correctly in 3 cases out of 4 problem cases. Because the method determines the root cause only from the plant operation historical data without any inspections, it is generalized to detect component failures and other plant anomalies.
机译:燃气区冷却(GDC)植物,旨在环境有效,需要频繁的维护,以避免植物蒸汽吸收冷却器(囊)中的化学反应腐蚀或泄漏。然而,大多数植物专家都难以遇到阳性和阴囊维持的负面影响尚不清楚。这是因为有各种指标来指示GDC SAC性能,但它们没有足够的信息来描述冷却器内部条件。本文描述了一种检测GDC SAC性能变化的根本原因的方法。具体地,(1)(1)通过对性能相关传感器数据的线性回归模型的冷却器性能,(2)根本原因是通过对传感器贡献比的时间序列分析来确定性能,根据约束理论的概念(TOC)。 Teknologi Petronali(UTP)GDC工厂的评估表明,该方法在4例问题案例中确定了根本原因。因为该方法仅从工厂运行历史数据确定根本原因而没有任何检查,所以它是推广的,以检测组件故障和其他植物异常。

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