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Using data from monitoring combined sewer overflows to assess, improve, and maintain combined sewer systems

机译:使用来自监视组合下水道溢流的数据来评估,改善和维护组合下水道系统

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摘要

Using low-cost sensors, data can be collected on the occurrence and duration of overflows in each combined sewer overflow (CSO) structure in a combined sewer system (CSS). The collection and analysis of real data can be used to assess, improve, and maintain CSSs in order to reduce the number and impact of overflows. The objective of this study was to develop a methodology to evaluate the performance of CSSs using low-cost monitoring. This methodology includes (1) assessing the capacity of a CSS using overflow duration and rain volume data, (2) characterizing the performance of CSO structures with statistics, (3) evaluating the compliance of a CSS with government guidelines, and (4) generating decision tree models to provide support to managers for making decisions about system maintenance. The methodology is demonstrated with a case study of a CSS in La Garriga, Spain. The rain volume breaking point from which CSO structures started to overflow ranged from 0.6. mm to 2.8. mm. The structures with the best and worst performance in terms of overflow (overflow probability, order, duration and CSO ranking) were characterized. Most of the obtained decision trees to predict overflows from rain data had accuracies ranging from 70% to 83%. The results obtained from the proposed methodology can greatly support managers and engineers dealing with real-world problems, improvements, and maintenance of CSSs
机译:使用低成本的传感器,可以收集有关联合下水道系统(CSS)中每个联合下水道溢出(CSO)结构中溢出发生的时间和持续时间的数据。真实数据的收集和分析可用于评估,改进和维护CSS,以减少溢出的次数和影响。这项研究的目的是开发一种使用低成本监控评估CSS性能的方法。该方法包括(1)使用溢流持续时间和雨量数据评估CSS的能力,(2)通过统计数据表征CSO结构的性能,(3)评估CSS是否符合政府准则,以及(4)生成决策树模型为管理人员提供有关系统维护决策的支持。西班牙La Garriga的CSS案例研究证明了该方法。 CSO结构开始溢出的雨量折断点为0.6。毫米至2.8。毫米对在溢出方面(溢出概率,顺序,持续时间和CSO排名)表现最佳和最差的结构进行了表征。所获得的大多数用于预测降雨数据溢出的决策树的准确性在70%至83%之间。从提议的方法学中获得的结果可以极大地支持经理和工程师处理CSS的实际问题,改进和维护

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