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A numerical fire simulation approach for effectiveness analysis of fire safety measures in floating liquefied natural gas facilities

机译:浮式液化天然气设施火灾安全措施有效性分析的数值模拟方法

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Fire remains a serious threat to a floating liquefied natural gas facility. It is of greater concern given the remote locations and limited accessibility of emergency services. This study aims to present a rigorous procedure to study potential accident scenarios in an offshore (floating processing) facility with different ignition source locations and verify the effectiveness of safety measures using computational fluid dynamics code. The uniqueness of the present study is the integration of release, dispersion and fire modeling scenarios, simplifying the fire analysis and increasing its effectiveness from the offshore process system design and analysis perspectives. The first step of the procedure is to identify the range of potential release scenarios and their strength of dispersion in confined and semi-confined spaces. Subsequently, potential fire scenarios are analyzed considering the influence of the location. Computational fluid dynamics models are used to analyze these three steps of the scenarios. Application of the procedure is demonstrated on an offshore facility by analyzing 14 credible scenarios. The ranges of safety measures of these fires are also studied to determine their effectiveness to prevent fires and mitigate their impact. This study provides a simple and efficient way to analyze the impact of key design parameters. In this study, the transition
机译:火灾仍然是对浮动的液化天然气设施的严重威胁。鉴于偏远地区和紧急服务的可及性有限,这引起了更大的关注。这项研究旨在提出一种严格的程序,以研究具有不同点火源位置的近海(浮动处理)设施中的潜在事故情况,并使用计算流体力学代码验证安全措施的有效性。从离岸过程系统设计和分析的角度来看,本研究的独特之处在于集成了释放,扩散和火灾建模方案,简化了火灾分析并提高了有效性。该过程的第一步是确定潜在释放场景的范围及其在密闭和半密闭空间中的分散强度。随后,考虑位置的影响来分析潜在的火灾场景。计算流体动力学模型用于分析方案的这三个步骤。通过分析14种可靠方案,在海上设施上演示了该程序的应用。还研究了这些火灾的安全措施范围,以确定其预防火灾和减轻其影响的有效性。这项研究提供了一种简单有效的方法来分析关键设计参数的影响。在这项研究中,过渡

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