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BAYESIAN-NETWORK-BASED FALL RISK EVALUATION OF STEEL CONSTRUCTION PROJECTS BY FAULT TREE TRANSFORMATION

机译:基于贝叶斯网络的故障树变换的钢结构工程跌落风险评估

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摘要

A fall (also referred to as a tumble) is the most common type of accident at steel construction (SC) sites. To reduce the risk of falls, current site safety management relies mainly on checklist evaluations. However, current on-site inspection is conducted under passive supervision, which fails to provide early warning to occupational accidents. To overcome the limitations of the traditional approach, this paper presents the development of a fall risk assessment model for SC projects by establishing a Bayesian network (BN) based on fault tree (FT) transformation. The model can enhance site safety management through an improved understanding of the probability of fall risks obtained from the analysis of the causes of falls and their relationships in the BN. In practice, based on the analysis of fall risks and safety factors, proper preventive safety management strategies can be established to reduce the occurrences of fall accidents at SC sites.
机译:坠落(也称为跌倒)是钢结构(SC)现场最常见的事故类型。为了减少跌倒的风险,当前的现场安全管理主要依靠清单评估。但是,当前的现场检查是在被动监督下进行的,不能对职业事故提供预警。为了克服传统方法的局限性,本文通过建立基于故障树(FT)变换的贝叶斯网络(BN),提出了SC项目的跌落风险评估模型的开发。该模型可以通过对从BN中跌倒的原因及其关系进行分析而获得的跌倒风险的可能性的更好的理解来增强现场安全管理。在实践中,基于对跌倒风险和安全因素的分析,可以建立适当的预防性安全管理策略,以减少SC站点跌倒事故的发生。

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