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Multidimensional mathematical modeling and numerical investigation of co-flow partially premixed methane/air laminar flames

机译:共流部分预混甲烷/空气层流火焰的多维数学建模和数值研究

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摘要

The goal of this paper is to analyze, by means of detailed numerical simulations, the influence of the partial pre-mixing level and the adequacy of different mathematical submodels on the modeling of co-flow partially premixed methane-air laminar flames. Five levels of premixing of the primary inlet are considered from an equivalence ratio of Φ = ∞ (non-premixed flame) to Φ = 2.464. Main flame properties are provided, giving special emphasis to the analysis of pollutant formation. Different mathematical formulation aspects (several chemical mechanisms, radiation effects, mass transport models, and inlet boundary conditions) are tested and validated against experimental data available in the literature. Finite volume techniques over staggered grids are used to discretize the governing equations. A parallel multiblock algorithm based on domain decomposition techniques running with loosely coupled computers has been used to obtain a competitive ratio between computational cost and resources. To assess the quality of the numerical solutions presented in this article, a verification process based on the generalized Richardson extrapolation technique and on the grid convergence index (GCI) has been applied.
机译:本文的目的是通过详细的数值模拟,分析部分预混水平和不同数学子模型的充分性对共流部分预混甲烷-空气层流火焰建模的影响。从Φ=∞(非预混合火焰)与Φ= 2.464的当量比考虑了一级进气口的五级预混合。提供了主要的火焰特性,特别强调了污染物形成的分析。测试了不同的数学公式化方面(几种化学机理,辐射效应,质量传输模型和入口边界条件),并根据文献中提供的实验数据进行了验证。交错网格上的有限体积技术用于离散控制方程。已使用基于与松耦合计算机一起运行的域分解技术的并行多块算法来获得计算成本和资源之间的竞争比。为了评估本文提出的数值解的质量,已经应用了基于广义Richardson外推技术和网格收敛指数(GCI)的验证过程。

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