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Risk assessment of an oxygen-enhanced combustor using a structural model based on the FMEA and fuzzy fault tree

机译:使用基于FMEA和模糊故障树的结构模型对增氧燃烧室进行风险评估

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The oxygen-enhanced combustor has the advantages of high burning efficiency and low emissions. However, it should not be promoted for industrial use until its reliability and safety have been fully recognized. A new methodology is proposed to assess the risk of an oxygen-enhanced combustor using a structural model based on the FMEA and fuzzy fault tree. In addition, it is applied to a selected pilot semi-industrial combustor. To identify the hazard source comprehensively, the pilot is divided into four subsystems: the combustor subsystem, feed subsystem, ignition subsystem and exhaust subsystem. According to the operational parameters of flow (flow rate, temperature and pressure) and the component functions in different subsystems, the cause and effect matrix can be built using the structural model, and the relationship between the operational parameters and the effects of the change for the operational parameters on the system can be presented. Based on the results of cause and effect matrix, the FMEA can be built to describe the failed models and accident scenarios of the pilot. The main accident forms include leakage, injury, fire and explosion. Accordingly, with the severity and probability analysis of different accident forms, the fire and explosion accidents should be further accessed quantitatively using the fuzzy fault tree analysis. The fault trees can be obtained in accordance with the FMEA, and the qualitative assessments of the basic events can be collected by using expert scoring. A hybrid approach for the fuzzy set theory and weight analysis is investigated to quantify the occurrence probability of basic events. Then, the importance analysis of the fault trees, including the hazard importance of basic events and the cut set importance, is performed to help determine the weak links of the fire and explosion trees. Finally, some of the most effective measures are presented to improve the reliability and safety of the combustion system. (C) 2014 Elsevier Ltd. All rights reserved.
机译:增氧燃烧器具有燃烧效率高,排放低的优点。但是,只有在其可靠性和安全性得到充分认可之前,才应将其推广到工业领域。提出了一种新的方法来使用基于FMEA和模糊故障树的结构模型评估增氧燃烧室的风险。此外,它还应用于选定的飞行员半工业燃烧器。为了全面识别危险源,飞行员被分为四个子系统:燃烧器子系统,进料子系统,点火子系统和排气子系统。根据流量的操作参数(流速,温度和压力)以及不同子系统中的组件功能,可以使用结构模型建立因果矩阵,并且操作参数与变化影响之间的关系可以显示系统上的操作参数。基于因果矩阵的结果,可以建立FMEA来描述飞行员的失败模型和事故场景。主要事故形式包括泄漏,受伤,火灾和爆炸。因此,通过对不同事故形式的严重性和概率分析,应该使用模糊故障树分析进一步量化火灾和爆炸事故的数量。可以根据FMEA获得故障树,并且可以使用专家评分来收集基本事件的定性评估。研究了模糊集理论和权重分析的混合方法,以量化基本事件的发生概率。然后,对故障树进行重要性分析,包括基本事件的危害重要性和采伐集重要性,以帮助确定火树和爆炸树的薄弱环节。最后,提出了一些最有效的措施来提高燃烧系统的可靠性和安全性。 (C)2014 Elsevier Ltd.保留所有权利。

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