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Methodology for computer aided fuzzy fault tree analysis

机译:计算机辅助模糊故障树分析的方法

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摘要

Probabilistic risk assessment (PRA) is a comprehensive, structured and logical analysis method aimed at identifying and assessing risks of complex process systems. PRA uses fault tree analysis (FTA) as a tool to identify basic causes leading to an undesired event, to represent logical dependency of these basic causes in leading to the event, and finally to calculate the probability of occurrence of this event. To conduct a quantitative fault tree analysis, one needs a fault tree along with failure data of the basic events (components). Sometimes it is difficult to have an exact estimation of the failure rate of individual components or the probability of occurrence of undesired events due to a lack of sufficient data. Further, due to imprecision in basic failure data, the overall result may be questionable. To avoid such conditions, a fuzzy approach may be used with the FTA technique. This reduces the ambiguity and imprecision arising out of subjectivity of the data. This paper presents a methodology for a fuzzy based computer-aided fault tree analysis tool. The methodology is developed using a systematic approach of fault tree development, minimal cut sets determination and probability analysis. Further, it uses static and dynamic structuring and modeling, fuzzy based probability analysis and sensitivity analysis. This paper also illustrates with a case study the use of a fuzzy weighted index and cutsets importance measure in sensitivity analysis (for system probabilistic risk analysis) and design modification.
机译:概率风险评估(PRA)是一种全面,结构化和逻辑分析的方法,旨在识别和评估复杂过程系统的风险。 PRA使用故障树分析(FTA)作为一种工具来识别导致不良事件的基本原因,以代表这些导致该事件的基本原因的逻辑依赖性,并最终计算出该事件发生的可能性。为了进行定量故障树分析,需要一棵故障树以及基本事件(组件)的故障数据。有时,由于缺乏足够的数据,很难准确估计各个组件的故障率或发生不希望的事件的可能性。此外,由于基本故障数据的不精确性,总体结果可能令人怀疑。为了避免这种情况,可以将模糊方法与FTA技术一起使用。这减少了由于数据的主观性引起的歧义和不精确性。本文提出了一种基于模糊的计算机辅助故障树分析工具的方法。该方法是使用故障树开发,最小割集确定和概率分析的系统方法开发的。此外,它使用静态和动态结构化和建模,基于模糊的概率分析和敏感性分析。本文还以案例研究为例,说明了在敏感性分析(用于系统概率风险分析)和设计修改中使用模糊加权指数和临界值重要性度量。

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