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Prognosis of Water Quality Sensors Using Advanced Data Analytics: Application to the Barcelona Drinking Water Network

机译:使用高级数据分析技术对水质传感器的预测:在巴塞罗那饮用水网络中的应用

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摘要

Water Utilities (WU) are responsible for supplying water for residential, commercial and industrial use guaranteeing the sanitary and quality standards established by different regulations. To assure the satisfaction of such standards a set of quality sensors that monitor continuously the Water Distribution System (WDS) are used. Unfortunately, those sensors require continuous maintenance in order to guarantee their right and reliable operation. In order to program the maintenance of those sensors taking into account the health state of the sensor, a prognosis system should be deployed. Moreover, before proceeding with the prognosis of the sensors, the data provided with those sensors should be validated using data from other sensors and models. This paper provides an advanced data analytics framework that will allow us to diagnose water quality sensor faults and to detect water quality events. Moreover, a data-driven prognosis module will be able to assess the sensitivity degradation of the chlorine sensors estimating the remaining useful life (RUL), taking into account uncertainty quantification, that allows us to program the maintenance actions based on the state of health of sensors instead on a regular basis. The fault and event detection module is based on a methodology that combines time and spatial models obtained from historical data that are integrated with a discrete-event system and are able to distinguish between a quality event or a sensor fault. The prognosis module analyses the quality sensor time series forecasting the degradation and therefore providing a predictive maintenance plan avoiding unsafe situations in the WDS.
机译:公用事业公司(WU)负责为住宅,商业和工业用途供水,以保证不同法规建立的卫生和质量标准。为了确保满足这些标准,使用了一组可连续监控水分配系统(WDS)的质量传感器。不幸的是,那些传感器需要连续维护以保证其正确和可靠的操作。为了对那些传感器的维护进行编程(考虑到传感器的健康状态),应部署一个预后系统。此外,在进行传感器的预后之前,应使用来自其他传感器和模型的数据来验证由这些传感器提供的数据。本文提供了一个高级数据分析框架,该框架将使我们能够诊断水质传感器故障并检测水质事件。此外,数据驱动的预测模块将能够评估氯传感器的灵敏度退化,并在考虑到不确定性量化的情况下估算剩余使用寿命(RUL),这使我们能够根据操作人员的健康状况对维护措施进行编程而是定期更换传感器。故障和事件检测模块基于一种方法,该方法结合了从历史数据中获得的时间和空间模型,这些历史数据与离散事件系统集成在一起,并且能够区分质量事件或传感器故障。预后模块分析质量传感器时间序列,以预测性能下降,从而提供预防性维护计划,避免WDS中出现不安全情况。

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