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Bayesian Network-Based Risk Analysis of Chemical Plant Explosion Accidents

机译:基于贝叶斯网络的化工厂爆炸事故风险分析

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摘要

The chemical industry has made great contributions to the national economy, but frequent chemical plant explosion accidents (CPEAs) have also caused heavy property losses and casualties, as the CPEA is the result of interaction of many related risk factors, leading to uncertainty in the evolution of the accident. To systematically excavate and analyze the underlying causes of accidents, this paper first integrates emergency elements in the frame of orbit intersection theory and proposes 14 nodes to represent the evolution path of the accident. Then, combined with historical data and expert experience, a Bayesian network (BN) model of CPEAs was established. Through scenario analysis and sensitivity analysis, the interaction between factors and the impact of the factors on accident consequences was evaluated. It is found that the direct factors have the most obvious influence on the accident consequences, and the unsafe conditions contribute more than the unsafe behaviors. Furthermore, considering the factor chain, the management factors, especially safety education and training, are the key link of the accident that affects unsafe behaviors and unsafe conditions. Moreover, effective government emergency response has played a more prominent role in controlling environmental pollution. In addition, the complex network relationship between elements is presented in a sensitivity index matrix, and we extracted three important risk transmission paths from it. The research provides support for enterprises to formulate comprehensive safety production management strategies and control key factors in the risk transmission path to reduce CPEA risks.
机译:化学工业为国民经济作出了巨大贡献,但经常化的化工厂爆炸事故(CPEAS)也造成了重度的财产损失和伤亡,因为CPEA是许多相关风险因素的相互作用的结果,导致进化中的不确定性事故。为了系统地挖掘和分析事故的潜在原因,本文首先将紧急元素集成在轨道交叉口理论框架中,并提出了14个节点来代表事故的演变路径。然后,结合历史数据和专家体验,建立了一个贝叶斯网络(BN)的CPEAS模型。通过场景分析和敏感性分析,评估了因素之间的相互作用和因素对事故后果的影响。结果发现,直接因素对事故后果具有最明显的影响,不安全的条件贡献超过不安全的行为。此外,考虑因素链,管理因素,尤其是安全教育和培训,是影响不安全行为和不安全条件的事故的关键环节。此外,有效的政府应急响应在控制环境污染方面发挥了更加突出的作用。另外,元素之间的复杂网络关系在灵敏度指数矩阵中呈现,我们从中提取了三个重要的风险传输路径。该研究为企业提供了支持,以制定综合安全生产管理策略和控制风险传输路径的关键因素,以减少CPEA风险。

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