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Risk-informed decision making in the nuclear industry: Application and effectiveness comparison of different genetic algorithm techniques

机译:核工业中基于风险的决策:不同遗传算法技术的应用和有效性比较

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摘要

The risk-informed decision making (RIDM) process, where insights gained from the probabilistic safety assessment are contemplated together with other engineering insights, is gaining an ever-increasing attention in the process industries. Increasing safety systems availability by applying RIDM is one of the prime goals for the authorities operating with nuclear power plants. Additionally, equipment ageing is gradually becoming a major concern in the process industries and especially in the nuclear industry, since more and more safety-related components are approaching or are already in their wear-out phase. A significant difficulty regarding the consideration of ageing effects on equipment (un)availability is the immense uncertainty the available equipment ageing data are associated to. This paper presents an approach for safety system unavailability reduction by optimizing the related test and maintenance schedule suggested by the technical specifications in the nuclear industry. Given the RIDM philosophy, two additional insights, i.e. ageing data uncertainty and test and maintenance costs, are considered along with unavailability insights gained from the probabilistic safety assessment for a selected standard safety system. In that sense, an approach for multi-objective optimization of the equipment surveillance test interval is proposed herein. Three different objective functions related to each one of the three different insights discussed above comprise the multi-objective nature of the optimization process. Genetic algorithm technique is utilized as an optimization tool. Four different types of genetic algorithms are utilized and consequently comparative analysis is conducted given the different features of the algorithms. The results obtained from the optimization show that by applying risk-informed surveillance requirements a significant reduction of system unavailability is achievable. The advantages and disadvantages among the four different types of genetic algorithms applied are addressed as well.
机译:风险信息决策(RIDM)流程在过程工业中越来越受到关注,其中从概率安全评估中获得的见解与其他工程见解一起被考虑在内。通过应用RIDM来提高安全系统的可用性是核电厂运行当局的主要目标之一。另外,由于越来越多的与安全相关的组件正在接近或已经处于磨损阶段,设备老化已逐渐成为过程工业尤其是核工业中的主要问题。考虑老化对设备(不可用)可用性的重大困难是可用设备老化数据所关联的巨大不确定性。本文提出了一种通过优化核工业技术规范建议的相关测试和维护计划来减少安全系统不可用性的方法。考虑到RIDM的原理,考虑了另外两个见解,即老化数据不确定性以及测试和维护成本,以及从选定标准安全系统的概率安全性评估中获得的不可用性见解。从这个意义上讲,本文提出了一种用于设备监视测试间隔的多目标优化的方法。与上面讨论的三种不同见解中的每一种相关的三种不同的目标函数包括优化过程的多目标性质。遗传算法技术被用作优化工具。利用了四种不同类型的遗传算法,因此根据算法的不同特征进行了比较分析。从优化中获得的结果表明,通过应用风险相关的监视要求,可以显着减少系统不可用性。还解决了所应用的四种不同类型的遗传算法之间的优缺点。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2012年第9期|p.701-712|共12页
  • 作者单位

    Reactor Engineering Division, 'Jozef Stefan' Institute, Jamova 39, SI-1000 Ljubljana, Slovenia;

    Reactor Engineering Division, 'Jozef Stefan' Institute, Jamova 39, SI-1000 Ljubljana, Slovenia;

    Faculty of Electrical Engineering, University of Ljubljana, Trzaska 25, SI-1000 Ljubljana, Slovenia;

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

  • 入库时间 2022-08-18 00:43:57

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