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Leak Localization in a Real Water Distribution Network Based on Search-Space Reduction

机译:基于搜索空间减少的真正配水网络中的泄漏定位

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摘要

This research article presents a model-based framework for detecting and localizing leaks in water distribution networks (WDNs). The framework uses optimization and systematic search space reduction. The method employs two stages: (1) the search space reduction (SSR) stage and (2) the leakage detection and localization stage (LDL). During SSR, the number of decision variables is reduced along with the range of possible values, while trying to preserve the optimum solution. Then, at the LDL stage, the size and area of a leak are found. The leak localization method is formulated as an optimization problem, which identifies leakage node locations and their associated emitter coefficients. This is achieved such that the differences between the simulated and field-observed values for pressure head and flow are minimized. The optimization problem is solved by using a genetic algorithm. A model that has already been calibrated at least according to threshold standards is necessary for this methodology. Two case studies are discussed in this paper including a real WDN example with artificially generated data, which investigated the limits of this method. The second case study is a real water system in the United Kingdom, where the method was implemented to detect a leak event that actually happened. The results suggest that leaks that cause a hydraulic impact larger than the sensor data error can be detected and localized with this method. The real case outcome shows that the presented method can reduce the search area for finding the leak to within 10% of the WDN (by length). The method can also contribute to more timely detection and localization of leakage hotspots, thus reducing economic and environmental impacts. The optimization model for predicting leakage hotspots can be effective despite the recognized challenges of model calibration and physical measurement limitations from the pressure and flow field tests.
机译:本研究制品介绍了一种基于模型的框架,用于检测和定位水分配网络(WDN)中的泄漏。该框架使用优化和系统搜索空间减少。该方法采用两个阶段:(1)搜索空间减少(SSR)阶段和(2)泄漏检测和定位阶段(LDL)。在SSR期间,决策变量的数量随着可能值的范围而减少,同时尝试保留最佳解决方案。然后,在LDL阶段,找到泄漏的尺寸和面积。将泄漏定位方法配制成优化问题,其识别泄漏节点位置及其相关的发射极系数。实现这一点,使得压力头和流动的模拟和现场观测值之间的差异最小化。通过使用遗传算法来解决优化问题。该方法需要至少根据阈值标准校准已经校准的模型。本文讨论了两个案例研究,包括具有人工产生的数据的真实WDN示例,其研究了该方法的限制。第二种案例研究是英国的真正水系统,其中该方法被实施以检测实际发生的泄漏事件。结果表明,可以检测到与传感器数据误差大的泄漏,并通过该方法定位和本地化。实际情况结果表明,所提出的方法可以减少搜索区域,以将泄漏发现到WDN的10%内(按长度)。该方法还可以有助于更及时地检测和定位泄漏热点,从而减少经济和环境影响。尽管从压力和流场测试的模型校准和物理测量限制的认识挑战,但预测泄漏热点的优化模型可能是有效的。

著录项

  • 来源
    《Journal of Water Resources Planning and Management》 |2019年第7期|04019024.1-04019024.13|共13页
  • 作者单位

    Univ Exeter Ctr Water Syst Coll Engn Math & Phys Sci Harrison Bldg North Pk Rd Exeter EX4 4QF Devon England;

    KWR Water Cycle Res Inst Groningenhaven 7 NL-3433 PE Nieuwegein Netherlands|Univ Exeter Coll Engn Math & Phys Sci Ctr Water Syst Hydroinformat Harrison Bldg North Pk Rd Exeter EX4 4QF Devon England;

    Delft Univ Technol Urban Water Infrastruct Fac Civil Engn & Geosci Dept Water Management NL-2628 CN Delft Netherlands|Univ Exeter Water Syst Engn Ctr Water Syst Coll Engn Math & Phys Sci Harrison Bldg North Pk Rd Exeter EX4 4QF Devon England;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Leakage; Optimization; Hydraulic modeling; Water distribution networks;

    机译:泄漏;优化;液压建模;水分配网络;

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