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A taxonomy of performance shaping factors for human reliability analysis in industrial maintenance

机译:性能整形因子分类法,用于工业维护中的人员可靠性分析

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Purpose: Human factors play an inevitable role in maintenance activities, and the occurrence of Human Errors (HEs) affects system reliability and safety, equipment performance and economic results. The high HE rate increased researchers’ attention towards Human Reliability Analysis (HRA) and HE assessment approaches. In these approaches, various environmental and individual factors influence the performance of maintenance operators affecting Human Error Probability (HEP) with a consequent variability in the success of intervention. However, a deep analysis of such factors in the maintenance field, often called Performance Shaping Factors (PSFs), is still missing. This has led the authors to systematically evaluate the literature on Human Error in Maintenance (HEM) and on the PSFs, in order to provide a shared PSF taxonomy. Design/methodology/approach: A Systematic Literature Review (SLR) was conducted to identify and select peer-reviewed papers that provided evidence on the relationship between maintenance activities and human performance. The obtained results provided a wide overview in the field of interest, shedding light on three main research areas of investigation: methodologies for human error analysis in maintenance, performance shaping factors and maintenance error consequences. In particular, papers belonging to the area of PSFs were analysed in-depth in order to identify and classify the PSFs, with the aim of achieving the PSF taxonomy for maintenance activities. The effects of each PSF on human reliability were defined and detailed. Findings: A total of 63 studies were selected and then analysed through a systematic methodology. 46% of these studies presented a qualitative/quantitative assessment of PSFs through application in different maintenance activities. Starting from the findings of the aforementioned papers, a PSF taxonomy specific for maintenance activities was proposed. This taxonomy represents an important contribution for researchers and practitioners towards the improvement of HRA methods and their applications in industrial maintenance. Originality/value: The analysis outlines the relevance of considering HEM because different error types occur during the maintenance process with non-negligible effects on the system. Despite a growing interest in HE assessment in maintenance, a deep analysis of PSFs in this field and a shared PSF taxonomy are missing. This paper fills the gap in the literature with the creation of a PSF taxonomy in industrial maintenance. The proposed taxonomy is a valuable contribution for growing the awareness of researchers and practitioners about factors influencing maintainers’ performance.
机译:目的:人为因素在维护活动中起着不可避免的作用,人为错误(HE)的发生会影响系统的可靠性和安全性,设备性能以及经济效益。高HE率使研究人员更加关注人类可靠性分析(HRA)和HE评估方法。在这些方法中,各种环境因素和个人因素都会影响维护操作员的性能,从而影响人为错误概率(HEP),从而导致干预成功的可变性。但是,仍然缺少对维护领域中此类因素(通常称为性能整形因数(PSF))的深入分析。这导致作者系统地评估了有关维护中的人为错误(HEM)和PSF的文献,以提供一种共享的PSF分类法。设计/方法/方法:进行了系统文献综述(SLR),以识别和选择经过同行评审的论文,这些论文为维护活动与人类绩效之间的关系提供了证据。获得的结果在感兴趣的领域提供了广泛的概述,重点介绍了三个主要的研究领域:维护中的人为错误分析方法,性能调整因素和维护错误后果。特别是,对属于PSF领域的论文进行了深入分析,以便对PSF进行识别和分类,以实现维护活动的PSF分类法。定义并详细说明了每种PSF对人类可靠性的影响。结果:总共选择了63项研究,然后通过系统的方法进行了分析。这些研究中有46%通过对不同维护活动的应用对PSF进行了定性/定量评估。从上述论文的发现出发,提出了针对维护活动的PSF分类法。该分类法对研究人员和从业人员表示了对改进HRA方法及其在工业维护中的应用的重要贡献。原创性/价值:分析概述了考虑HEM的相关性,因为在维护过程中会发生不同的错误类型,并且对系统的影响不可忽略。尽管人们对维护中的HE评估越来越感兴趣,但仍缺少对该领域中PSF的深入分析和PSF共享的分类法。本文通过在工业维护中创建PSF分类法来填补文献中的空白。拟议的分类法为提高研究人员和从业人员对影响维护人员绩效的因素的认识做出了宝贵的贡献。

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