Large Eddy Simulation of a Swirl-Stabilized Pilot Combustor from Conventional to Flameless Mode

IF 1.5 Q3 ENGINEERING, CHEMICAL
E. Fooladgar, Ck Chan
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引用次数: 3

Abstract

This paper investigates flame and flow structure of a swirl-stabilized pilot combustor in conventional, high temperature, and flameless modes by means of a partially stirred reactor combustion model to provide a better insight into designing lean premixed combustion devices with preheating system. Finite rate chemistry combustion model with one step tuned mechanism and large eddy simulation is used to numerically simulate six cases in these modes. Results show that moving towards high temperature mode by increasing the preheating level, the combustor is prone to formation of thermal with higher risks of flashback. In addition, the flame becomes shorter and thinner with higher turbulent kinetic energies. On the other hand, towards the flameless mode, leaning the preheated mixture leads to almost thermal -free combustion with lower risk of flashback and thicker and longer flames. Simulations also show qualitative agreements with available experiments, indicating that the current combustion model with one step tuned mechanisms is capable of capturing main features of the turbulent flame in a wide range of mixture temperature and equivalence ratios.
旋涡稳定先导燃烧室从常规模式到无焰模式的大涡模拟
本文采用部分搅拌反应器燃烧模型,对旋涡稳定中试燃烧室在常规、高温和无焰模式下的火焰和流动结构进行了研究,为设计具有预热系统的精益预混燃烧装置提供了更好的思路。采用一步调谐机制和大涡模拟的有限速率化学燃烧模型,对六种燃烧模式进行了数值模拟。结果表明,随着预热水平的提高,燃烧室向高温模式移动,燃烧室容易形成热液,闪回风险较高。湍流动能越高,火焰越短越薄。另一方面,在无焰模式下,将预热过的混合物倾斜,几乎可以实现无热燃烧,闪回的风险更低,火焰更浓、更长。模拟结果与已有的实验结果在定性上一致,表明目前采用一步调谐机制的燃烧模型能够在大范围的混合温度和等效比下捕捉湍流火焰的主要特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Combustion
Journal of Combustion ENGINEERING, CHEMICAL-
CiteScore
2.00
自引率
28.60%
发文量
8
审稿时长
20 weeks
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