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Human reliability analysis and optimization of manufacturing systems through Bayesian networks and human factors experiments: A case study in a flexible intermediate bulk container manufacturing plant

机译:贝叶斯网络和人类因素实验的人力可靠性分析与制造系统优化 - 一种柔性中间散装制造厂的案例研究

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摘要

Human reliability analysis (HRA) and optimization in manufacturing systems are effective to reduce system failure. The purpose of this study is to examine the HRA and optimization through a Bayesian network (BN) model and human factors experiments (HFEs). This study was applied to a flexible intermediate bulk container manufacturing plant. The human physiological and psychological factors consisting of personal abilities of flexibility, coordination, memory, and attention were regarded as the only performance shaping factors in this study. With the BN model, the relationship between human factors and human errors was described qualitatively and the impact of the human factor on system failures was judged quantitatively. Then the workers' abilities training with HFEs based on the fault diagnosis results was carried out. The total numbers of errors have been decreased by 69.06% and the system failure rate has been reduced significantly after training.
机译:人力可靠性分析(HRA)和制造系统的优化可有效降低系统故障。 本研究的目的是通过贝叶斯网络(BN)模型和人类因素实验(HFES)来检查HRA和优化。 该研究应用于柔性中间散装容器制造厂。 人的生理和心理因素,包括灵活性,协调,记忆和关注的个人能力,被认为是本研究中唯一的性能塑造因素。 利用BN模型,定性描述了人为因素和人为误差之间的关系,定量判断人为因素对系统故障的影响。 然后进行了基于故障诊断结果的HFES培训工人的能力。 训练后,误差总数已减少69.06%,系统故障率明显减少。

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