System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures

Water distribution networks (WDNs) represent a class of critical infrastructure networks. When a disaster occurs, component failures in a WDN may trigger system failures that result in larger-scale reactions. The aim of the paper is to evaluate the evolution of system reliability and failure propaga...

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Main Authors: Qing Shuang, Yisheng Liu, Yongzhong Tang, Jing Liu, Kai Shuang
Format: Article
Language:English
Published: MDPI AG 2017-06-01
Series:Water
Subjects:
Online Access:http://www.mdpi.com/2073-4441/9/6/413
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spelling doaj-5dd45873615a4acfa8ac783e6fb445462020-11-24T22:31:06ZengMDPI AGWater2073-44412017-06-019641310.3390/w9060413w9060413System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading FailuresQing Shuang0Yisheng Liu1Yongzhong Tang2Jing Liu3Kai Shuang4Department of Construction Management, School of Economics and Management, Beijing Jiaotong University, Beijing 100044, ChinaDepartment of Construction Management, School of Economics and Management, Beijing Jiaotong University, Beijing 100044, ChinaDepartment of Construction Management, School of Economics and Management, Beijing Jiaotong University, Beijing 100044, ChinaDepartment of Construction Management, School of Economics and Management, Beijing Jiaotong University, Beijing 100044, ChinaCollege of Geophysics and Information Engineering, China University of Petroleum, Beijing 102249, ChinaWater distribution networks (WDNs) represent a class of critical infrastructure networks. When a disaster occurs, component failures in a WDN may trigger system failures that result in larger-scale reactions. The aim of the paper is to evaluate the evolution of system reliability and failure propagation time for a WDN experiencing cascading failures, and find the critical pipes which may reduce system reliability dramatically. Multiple factors are considered in the method such as network topology, the balance of water supply and demand, demand multiplier, and pipe break isolation. The pipe-based attack with multiple failure scenarios is simulated in the paper. A case WDN is used to illustrate the method. The results show that the lowest capacity gets stronger when a WDN is short of supply, becoming the dominant factor that decides the evolution of system reliability and failure propagation time. The valve ratio (VR) and system reliability present a flattened S curve relationship, and there are two turning points in VR. The critical pipes can be identified. With the fixed 5% valves, a WDN can improve system reliability and resist cascading failures effectively. The findings provide insights into the system reliability and failure propagation time for WDNs experiencing cascading failures. It is proven to be useful in future studies focused on the operation and management of water services.http://www.mdpi.com/2073-4441/9/6/413water distribution networkscascading failuressystem reliabilityfailure propagation timevalve ratiomultiple failure scenarios
collection DOAJ
language English
format Article
sources DOAJ
author Qing Shuang
Yisheng Liu
Yongzhong Tang
Jing Liu
Kai Shuang
spellingShingle Qing Shuang
Yisheng Liu
Yongzhong Tang
Jing Liu
Kai Shuang
System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures
Water
water distribution networks
cascading failures
system reliability
failure propagation time
valve ratio
multiple failure scenarios
author_facet Qing Shuang
Yisheng Liu
Yongzhong Tang
Jing Liu
Kai Shuang
author_sort Qing Shuang
title System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures
title_short System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures
title_full System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures
title_fullStr System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures
title_full_unstemmed System Reliability Evaluation in Water Distribution Networks with the Impact of Valves Experiencing Cascading Failures
title_sort system reliability evaluation in water distribution networks with the impact of valves experiencing cascading failures
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2017-06-01
description Water distribution networks (WDNs) represent a class of critical infrastructure networks. When a disaster occurs, component failures in a WDN may trigger system failures that result in larger-scale reactions. The aim of the paper is to evaluate the evolution of system reliability and failure propagation time for a WDN experiencing cascading failures, and find the critical pipes which may reduce system reliability dramatically. Multiple factors are considered in the method such as network topology, the balance of water supply and demand, demand multiplier, and pipe break isolation. The pipe-based attack with multiple failure scenarios is simulated in the paper. A case WDN is used to illustrate the method. The results show that the lowest capacity gets stronger when a WDN is short of supply, becoming the dominant factor that decides the evolution of system reliability and failure propagation time. The valve ratio (VR) and system reliability present a flattened S curve relationship, and there are two turning points in VR. The critical pipes can be identified. With the fixed 5% valves, a WDN can improve system reliability and resist cascading failures effectively. The findings provide insights into the system reliability and failure propagation time for WDNs experiencing cascading failures. It is proven to be useful in future studies focused on the operation and management of water services.
topic water distribution networks
cascading failures
system reliability
failure propagation time
valve ratio
multiple failure scenarios
url http://www.mdpi.com/2073-4441/9/6/413
work_keys_str_mv AT qingshuang systemreliabilityevaluationinwaterdistributionnetworkswiththeimpactofvalvesexperiencingcascadingfailures
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AT yongzhongtang systemreliabilityevaluationinwaterdistributionnetworkswiththeimpactofvalvesexperiencingcascadingfailures
AT jingliu systemreliabilityevaluationinwaterdistributionnetworkswiththeimpactofvalvesexperiencingcascadingfailures
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