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首页> 外文期刊>International journal of hydrogen energy >Large-eddy simulation of turbulent autoigniting hydrogen lifted jet flame with a multi-regime flamelet approach
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Large-eddy simulation of turbulent autoigniting hydrogen lifted jet flame with a multi-regime flamelet approach

机译:多区域小火焰方法对湍流自燃氢举升火焰的大涡模拟

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In this work, the combustion model is focused on to describe a multitude of reaction regimes that are deemed to affect the flame stabilization. For this purpose, an efficient flame indicator is formulated to differentiate the differing flame structures and make use of flamelet chemistry that accounts for autoignition and multi-regime reactions. The large eddy simulation with this methodology is carried out to compute a turbulent lifted hydrogen-nitrogen flame in vitiated coflow. The canonical flame models of a laminar premixed flame and an unsteady counterflowing flame have been used to simulate the flamelet structure at different regimes. Present model improves the prediction of mean and rms profiles for temperature and species mass fraction in the comparison with experiments and a reference simulation, adopting the single-regime flamelet. The computed results also demarcate the formation of a triple flame structure at the flame base, where combustion develops into the premixed reaction that extends to the fuel-lean and rich branches. The counterflow mixing mode with autoignition is identified as the major mechanism for stabilization and is responsible for the propagating premixed zone above the liftoff height. The developed multi-regime flamelet approach properly accounts for the interactive different modes of burning. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项工作中,燃烧模型专注于描述被认为会影响火焰稳定的多种反应方式。为此,配制了一种有效的火焰指示器,以区分不同的火焰结构,并利用能反映自燃和多区域反应的火焰化学。用这种方法进行了大涡模拟,以计算在涡流下的湍流升起的氢-氮火焰。层流预混火焰和非稳态逆流火焰的规范火焰模型已用于模拟不同状态下的小火焰结构。与单模小火焰实验和参考模拟相比,本模型改进了温度和物种质量分数的均值和均方根分布的预测。计算结果还标出了在火焰底部形成三重火焰结构的情况,在火焰基础上燃烧发展为预混合反应,并延伸至贫燃料和浓燃料分支。具有自动点火的逆流混合模式被认为是稳定的主要机制,并负责提升高度以上的预混区域。发达的多区域小火焰方法可以正确解决互动的不同燃烧方式。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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