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On Fuzzy inference system based Failure Mode and Effect Analysis (FMEA) methodology

机译:基于模糊推理系统的故障模式和效果分析(FMEA)方法

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摘要

Failure Mode and Effect Analysis (FMEA) is a popular problem prevention methodology. It utilizes a Risk Priority Number (RPN) model to evaluate the risk associated to each failure mode. The conventional RPN model is simple, but, its accuracy is argued. A fuzzy RPN model is proposed as an alternative to the conventional RPN. The fuzzy RPN model allows the relation between the RPN score and Severity, Occurrence and Detect ratings to be of non-linear relationship, and it maybe a more realistic representation. In this paper, the efficiency of the fuzzy RPN model in order to allow valid and meaningful comparisons among different failure modes in FMEA to be made is investigated. It is suggested that the fuzzy RPN should be subjected to certain theoretical properties of a length function e.g. monotonicity, sub-additivity and etc. In this paper, focus is on the monotonicity property. The monotonicity property for the fuzzy RPN is firstly defined, and a sufficient condition for a FIS to be monotone is applied to the fuzzy RPN model. This is an easy and reliable guideline to construct the fuzzy RPN in practice. Case studies relating to semiconductor industry are then presented.
机译:失败模式和效果分析(FMEA)是一种流行的防止方法。它利用风险优先级(RPN)模型来评估与每个故障模式相关的风险。传统的RPN模型简单,但是,其准确性被争议。提出了一种模糊的RPN模型作为传统RPN的替代方案。模糊的RPN模型允许RPN评分和严重程度之间的关系,发生和检测额定值是非线性关系的,并且它可能是更现实的表示。在本文中,研究了模糊RPN模型的效率,以便进行FMEA中的不同故障模式下的有效和有意义的比较。建议采用模糊RPN的长度函数的某种理论特性。在本文中,单调性,子 - 添加性等,重点是在单调性财产上。首先定义模糊RPN的单调性属性,并且将FIS待单调的充分条件应用于模糊的RPN模型。这是一种简单可靠的指导,可以在实践中构建模糊RPN。然后呈现与半导体工业有关的案例研究。

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