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Kinetic and fluid dynamics modeling of methane/hydrogen jet flames in diluted coflow

机译:稀释共流中甲烷/氢气喷射火焰的动力学和流体动力学模型

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MILD combustion is a recent development in the combustion of hydrocarbon fuels which promises high efficiencies and low NO_x emissions. In this paper we analyze the mathematical and numerical modeling of a Jet in Hot Coflow (JHC) burner, which is designed to emulate a moderate and intense low oxygen dilution (MILD) combustion regime [1]. This paper initially discusses the effects of several modeling strategies on the prediction of the JHC flame structure using the CFD code FLUENT 6.3.26. Effects of various turbulence models and their boundary conditions have been studied. Moreover, the detailed kinetic mechanism adopted in the CFD simulations is successfully validated in the conditions of interest using recent literature data [2] on the effect of nitrogen dilution on the flame speeds of several CH_4/H_2/air lean mixtures. One of the aims of this paper is also to describe a methodology for computing pollutant formation in steady turbulent flows to verify its applicability to the MILD combustion regime. CFD results are post-processed for calculating the NO_x using a numerical tool called Kinetic Post Processor (KPP). The modeling results agree with the experimental results [1] and support the proposed approach as a useful tool for optimizing the design of new burners also in the MILD combustion regime.
机译:轻度燃烧是碳氢燃料燃烧的最新进展,有望实现高效率和低NO_x排放。在本文中,我们分析了热同流(JHC)燃烧器的数学模型和数值模型,该模型旨在模拟中等强度和强烈的低氧稀释(MILD)燃烧状态[1]。本文首先讨论使用CFD代码FLUENT 6.3.26预测JHC火焰结构的几种建模策略的影响。研究了各种湍流模型的影响及其边界条件。此外,在CFD模拟中采用的详细动力学机理已在感兴趣的条件下使用最新的文献数据[2]成功验证,其中有关氮气稀释对几种CH_4 / H_2 /稀空气混合物的火焰速度的影响。本文的目的之一还在于描述一种用于计算稳定湍流中污染物形成的方法,以验证其在MILD燃烧状态下的适用性。使用称为动力学后处理器(Kinetic Post Processor,KPP)的数字工具对CFD结果进行后处理,以计算NO_x。建模结果与实验结果一致[1],并支持所提出的方法,这也是在MILD燃烧状态下优化新燃烧器设计的有用工具。

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