层流和湍流烟尘火焰的详细计算模型

A. Dasgupta, Somesh P. Roy, D. Haworth
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引用次数: 0

摘要

本研究报告了基于开源计算流体动力学(CFD)工具箱代码OpenFOAM的两个并行火焰求解器的开发和验证。首先,开发了一种层流火焰求解器,并与实验数据进行了验证。在层流火焰求解器中实现了半经验两方程烟尘模型和基于矩量插值闭包(MOMIC)的精细烟尘模型。还实现了包括灰烟辐射在内的光学薄辐射模型。用这些模型对层流轴对称扩散火焰进行了初步研究,结果与实验数据吻合较好。其次,利用雷诺平均方程和传递概率密度函数(tPDF)方法建立了紊流火焰求解器。在此紊流求解器上实现了MOMIC烟尘模型。基于逐行光谱辐射数据库的复杂光子蒙特卡罗(PMC)模型也在紊流求解器上实现。紊流求解器的验证正在进行中。对于中等规模的化学机制,这两种求解器都表现出良好的可扩展性,当使用更大的化学机制时,它们的可扩展性甚至更强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detailed computational modeling of laminar and turbulent sooting flames
This study reports development and validation of two parallel flame solvers with soot models based on the open-source computation fluid dynamics (CFD) toolbox code OpenFOAM. First, a laminar flame solver is developed and validated against experimental data. A semi-empirical two-equation soot model and a detailed soot model using a method of moments with interpolative closure (MOMIC) are implemented in the laminar flame solver. An optically thin radiation model including gray soot radiation is also implemented. Preliminary results using these models show good agreement with experimental data for the laminar axisymmetric diffusion flame studied. Second, a turbulent flame solver is developed using Reynolds-averaged equations and transported probability density function (tPDF) method. The MOMIC soot model is implemented on this turbulent solver. A sophisticated photon Monte-Carlo (PMC) model with line-by-line spectral radiation database for modeling is also implemented on the turbulent solver. The validation of the turbulent solver is under progress. Both the solvers show good scalability for a moderate-sized chemical mechanism, and can be expected to scale even more strongly when larger chemical mechanisms are used.
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