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首页> 外文期刊>Combustion and Flame >Analysis of unsteady reacting flows and impact of chemistry description in Large Eddy Simulations of side-dump ramjet combustors
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Analysis of unsteady reacting flows and impact of chemistry description in Large Eddy Simulations of side-dump ramjet combustors

机译:侧卸式冲压喷气燃烧器大涡模拟中的非稳态反应流分析和化学描述的影响

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摘要

Among all the undesired phenomena observed in ramjet combustors, combustion instabilities are of foremost importance and predicting them using Large Eddy Simulation (LES) is an active research field. While acoustics are naturally captured by compressible LES provided that the proper boundary conditions are applied, combustion/chemistry modelling remains a critical issue and its impact on numerical predictions must still be assessed for complex applications. To do so, two different ramjet LES's are compared here. The first simulation is based on a standard one-step chemistry known to over-estimate the laminar flame speed in fuel rich conditions. The second simulation uses the same scheme but introduces a correction of reaction rates for rich flames to match a detailed mechanism provided by Peters (1993) [1]. Even though the two chemical schemes are very similar and very few points burn in rich regimes, distinct limit-cycles are obtained with LES depending on which scheme is used. Results obtained with the standard one-step chemistry exhibit high frequency self-sustained oscillations. Multiple flame fronts are stabilized in the vicinity of the shear layer developing at the exit of the air inlets. When compared to the experiment, the fitted one-step scheme yields better predictions than the standard scheme. With the fitted scheme, the flame is detached from the air inlets and stabilizes in the regions identified in the experiment (Ristori et al, (2005) [2], Heid and Ristori (2003) [3], Heid and Ristori (2005) [4], Ristori et al. (1999) [5]). LES and experiments exhibit all main low-frequency modes including the first longitudinal acoustic mode. The high frequencies excited with the standard scheme are damped with the fitted scheme. The chemical scheme is found, for this ramjet burner, to have a strong impact on the predicted stability: approximate chemical schemes even in a limited range of equivalence ratio can lead to the occurence of non-physical combustion oscillations.
机译:在冲压喷气式燃烧器中观察到的所有不良现象中,燃烧不稳定性是最重要的,使用大涡模拟(LES)进行预测是一个活跃的研究领域。如果可应用适当的边界条件,声学自然是由可压缩的LES自然捕获的,但燃烧/化学模型仍然是一个关键问题,对于复杂的应用,其对数值预测的影响必须进行评估。为此,在这里比较了两种不同的冲压喷气发动机。第一次模拟基于已知的标准一步化学方法,该化学方法在燃料丰富的情况下过高估计了层流火焰速度。第二种模拟使用相同的方案,但是引入了针对富焰的反应速率的校正,以匹配Peters(1993)[1]提供的详细机制。即使这两种化学方案非常相似,并且在富氧状态下很少有燃烧点,但根据使用哪种方案,使用LES可以获得截然不同的极限环。用标准的一步化学方法获得的结果显示出高频自持振荡。多个火焰锋在进气口出口处形成的剪切层附近稳定。当与实验比较时,拟合的单步方案比标准方案产生更好的预测。通过安装方案,火焰从进气口脱离并稳定在实验确定的区域(Ristori等,(2005)[2],Heid and Ristori(2003)[3],Heid和Ristori(2005)。 [4],Ristori等人(1999)[5]。 LES和实验显示了所有主要的低频模式,包括第一个纵向声学模式。用标准方案激励的高频通过安装方案衰减。对于这种冲压喷射燃烧器,发现化学方案对预测的稳定性有很大的影响:即使在相当的当量比范围内,近似的化学方案也可能导致非物理燃烧振荡的发生。

著录项

  • 来源
    《Combustion and Flame》 |2010年第1期|176-191|共16页
  • 作者单位

    CERFACS, 42 Av. C. Coriolis, 31057 Toulouse Cedex, France;

    CERFACS, 42 Av. C. Coriolis, 31057 Toulouse Cedex, France;

    ONERA, BP 72, 29 Avenue de la Division Leclerc, 92322 Chatillon Cedex, France;

    ONERA, BP 72, 29 Avenue de la Division Leclerc, 92322 Chatillon Cedex, France;

    CERFACS, 42 Av. C. Coriolis, 31057 Toulouse Cedex, France;

    ONERA, BP 72, 29 Avenue de la Division Leclerc, 92322 Chatillon Cedex, France;

    IMFT, Avenue C. Soula, 31400 Toulouse, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    large eddy simulation; combustion; acoustic; ramjet; chemical scheme;

    机译:大涡模拟燃烧;声学冲压喷气机化学方案;

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