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Methodology for modeling system evolution to support decisionmaking with an application in severe accident management.

机译:为系统演变建模的方法论,以支持在严重事故管理中的应用决策。

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摘要

A new methodology is developed for modeling a system's evolution to support decisionmaking on alternative actions which affect the system's evolution. The methodology is based upon the goal tree success tree method for hierarchal decomposition of the system's objective. The goal tree success tree structure is used to identify the system's objective and supporting functions and the events and actions which affect realization of these functions. The events are logically arranged using an event tree format and potential event sequences and end states are identified. The probability of the occurrence of the events are determined via condition-based logical diagrams (CLDs) and functional logic diagrams (FLDs) which model the propagation of binary logic (in the case of CLDs) and incorporate equations representing the more complex hierarchy process is then used to evaluate the alternative actions affecting the end states and provide a recommendation on the preferred actions for meeting the system objective. The CLDs and FLDs provide a mechanism for modeling diverse knowledge, i.e., deterministic, probabilistic, logic based, as well as temporal, in a uniform manner. This methodology is used to develop a model for analyzing severe accident phenomena and alternative actions for mitigating a severe accident at a nuclear power plant. This severe accident model is then used as the knowledge base for a real-time expert system. Tests run using this expert system demonstrate its capability to calculate the probability of various accident progression end states and provide recommendations on the priority for implementing severe accident mitigation strategies. In addition, research was performed to evaluate the use of the FLD concept to model containment failure from direct containment heating as analyzed using the Risk Oriented Accident Analysis Methodology. A system of hierarchically linked FLDs were developed which illustrate the relative effect of input parameters on intermediate and anal level parameters. This research has illustrated the usefulness of this modeling methodology to integrate diverse knowledge in a manner useful in supporting decisionmaking.
机译:开发了一种新的方法,用于对系统的演化进行建模,以支持对影响系统演化的替代行动的决策。该方法基于目标树成功树方法,用于系统目标的层次分解。目标树成功树结构用于识别系统的目标和支持功能以及影响这些功能实现的事件和动作。使用事件树格式在逻辑上安排事件,并标识潜在事件序列和结束状态。事件发生的可能性是通过基于条件的逻辑图(CLD)和功能逻辑图(FLD)来确定的,这些条件图对二进制逻辑的传播进行建模(在CLD的情况下),并结合了表示更复杂的层次过程的方程式:然后用于评估影响最终状态的替代措施,并为实现系统目标的首选措施提供建议。 CLD和FLD提供了一种以统一的方式对各种知识进行建模的机制,即确定性,概率,基于逻辑以及时间的知识。该方法用于开发一个模型,用于分析严重事故现象和缓解核电厂严重事故的替代措施。然后将此严重事故模型用作实时专家系统的知识库。使用该专家系统进行的测试,证明了其计算各种事故进展终态概率的能力,并提供了实施严重事故缓解策略的优先级的建议。此外,进行了研究以评估FLD概念在模拟直接安全壳加热导致的安全壳失效方面的应用,如使用面向风险的事故分析方法论所进行的分析。开发了分层链接的FLD系统,该系统说明了输入参数对中级和肛门级参数的相对影响。这项研究表明了这种建模方法以支持决策的方式集成各种知识的有用性。

著录项

  • 作者

    O'Brien, James Bernard.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Engineering Nuclear.; Engineering System Science.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 245 p.
  • 总页数 245
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 原子能技术;系统科学;
  • 关键词

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