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Risk analysis and adaptive response planning for water distribution systems contamination emergency management.

机译:供水系统污染应急管理的风险分析和自适应响应计划。

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摘要

Drinking water distribution systems (WDSs) hold a particularly critical and strategic position in preserving public health and industrial growth. Despite the ubiquity of this infrastructure, its importance for public health, and increased risk of terrorism, several aspects of emergency management for WDSs remain at an undeveloped stage. A set of methods is developed to analyze the risk and consequences of WDS contamination events and develop emergency response support tools.;Monte Carlo and optimization schemes are developed to evaluate contamination risk of WDSs for generation of critical contamination scenarios. A multicriteria optimization approach is proposed that treats likelihood and consequences as independent risk measures to find an ensemble of uniformly-distributed critical scenarios. This approach provides insight into system risk and potential mitigation options not available under maximum risk or maximum consequences analyses.;Static multiobjective simulation-optimization schemes are developed for generation of optimal response mechanisms for contamination incidents with two conflicting objectives of minimization of health consequences and impacts on non-consumptive water uses. Performance of contaminant flushing and containment are investigated. Pressure-driven hydraulic analysis is performed to simulate the complicated system hydraulics under pressure-deficit conditions.;Performance of a novel preventive response action -- injection of food-grade dye directly into drinking water -- for mitigation of health impacts as a contamination threat unfolds is explored. The emergency response is formulated as a multiobjective optimization problem for the minimization of risks to life with minimum false warning and cost. A multiobjective optimization scheme is used for the management of contamination events for diverse contaminant agents without interruption of firefighting.;A dynamic modeling scheme is developed that accounts for the time-varying behavior of the system during an emergency. Effects of actions taken by the managers and consumers as well as the changing perceived contaminant source attributes are included in the simulation model to provide a realistic picture of the dynamic environment. A dynamic optimization scheme is coupled with the simulation model to identify and update the optimal response recommendations during the emergency.;Machine learning approaches are employed for real-time characterization of contaminant sources and identification of effective response strategies for a timely and effective response to contamination incidents and threats. In contrast to traditional approaches that perform whole analysis after a contamination event occurs, proposed machine learning methods gain system knowledge in advance and use this extracted information to identify contamination attributes after an incident occurs.
机译:饮用水分配系统(WDS)在维护公共卫生和工业增长方面具有特别重要的战略地位。尽管这种基础设施无处不在,它对公共卫生的重要性以及恐怖主义风险的增加,但WDS应急管理的几个方面仍处于未开发阶段。开发了一套方法来分析WDS污染事件的风险和后果,并开发应急响应支持工具。Monte Carlo和优化方案被开发出来,以评估WDS的污染风险以生成关键的污染场景。提出了一种多准则优化方法,该方法将可能性和后果视为独立的风险度量,以找到统一分布的关键场景的集合。这种方法提供了对系统风险和最大风险或最大后果分析下不可用的潜在缓解方案的洞察力;静态多目标模拟优化方案旨在为污染事件生成最佳响应机制,并具有两个相互矛盾的目标,即将健康后果和影响降至最低非消费用水。研究了污染物冲洗和封闭的性能。进行压力驱动的液压分析以模拟在压力不足的情况下复杂的系统液压;一种新颖的预防响应措施-将食品级染料直接注入饮用水中-减轻作为污染威胁的健康影响探索展开。紧急响应被表述为多目标优化问题,可将生命危险降至最低,同时将虚假警告和成本降到最低。一种多目标优化方案用于管理各种污染物的污染事件,而不会中断灭火。开发了一种动态建模方案,该方案考虑了紧急情况下系统的时变行为。管理人员和消费者采取的措施以及不断变化的可感知污染物源属性的影响都包含在仿真模型中,以提供动态环境的逼真的图像。动态优化方案与仿真模型相结合,以识别和更新紧急情况下的最佳响应建议。;采用机器学习方法来实时表征污染物源,并确定有效的响应策略,以便对污染做出及时有效的响应事件和威胁。与在污染事件发生后执行整体分析的传统方法相反,提出的机器学习方法可以提前获取系统知识,并在事件发生后使用提取的信息来识别污染属性。

著录项

  • 作者

    Rasekh, Amin.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Civil.;Water Resource Management.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 158 p.
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:39

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