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Uncertainty analysis of common cause failure in safety instrumented systems

机译:安全仪表系统中常见原因故障的不确定性分析

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This paper analyses the problem of epistemic uncertainty in assessing the performance of safety instrumented systems (SIS) using fault trees. The imperfect knowledge concerns the common cause failure (CCF) involved in the SIS in low demand mode. The point-valued CCF factors are replaced by fuzzy numbers, allowing experts to express their uncertainty about the CCF values. This paper shows how these uncertainties propagate through the fault tree and how this induces an uncertainty to the values of the SIS failure probability on demand and to the safety integrity level of the SIS. For the sake of verification and comparison, and to show the exactness of the approach, a Monte Carlo sampling approach is proposed, where by a uniform or triangular second-order probability distribution of CCF factors is considered.
机译:本文分析了使用故障树评估安全仪表系统(SIS)性能时的认知不确定性问题。不完善的知识涉及低需求模式下SIS中涉及的共因故障(CCF)。点值CCF因子由模糊数代替,使专家可以表达他们对CCF值的不确定性。本文显示了这些不确定性如何在故障树中传播,以及如何根据需求将SIS故障概率的值和SIS的安全完整性级别引入不确定性。为了验证和比较,并显示该方法的准确性,提出了一种蒙特卡洛采样方法,其中考虑了CCF因子的均匀或三角二阶概率分布。

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    《Journal of Risk and Reliability》 |2011年第4期|p.450-460|共11页
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