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Numerical and experimental investigations on the influence of preheating and dilution on transition of laminar coflow diffusion flames to Mild combustion regime

机译:预热和稀释对层流同流扩散火焰向轻度燃烧状态过渡影响的数值和实验研究

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摘要

A numerical and experimental study has been carried out to acquire knowledge about the structure and stabilization mechanism of coflow flames in their transition to the Mild combustion regime. In total, three CH_4/N_2/oxidizer coflow flames have been studied with a systematic dilution and preheating of the fuel and coflow streams. These flames comprise the non-preheated case (Case NP), preheated case (Case P) and Mild case (Case M), diluted and preheated from ambient temperature up to 1530 K. Radial profiles of temperature and species concentrations have been measured using spontaneous Raman scattering. Detailed computations have been performed by steady-state simulations of these cases using detailed chemistry with the GRI 3.0 mechanism, multi-component mixture-averaged transport and an optically thin approximation for radiative heat losses. An overall good agreement has been found between results of the detailed computations and experiments for Case NP, Case P and at lower axial distances for Case M. The importance of using multicomponent transport and radiative heat losses in the computations has been investigated by performing additional computations with more simplified models for Case NP. A comparison of computed temperature distributions indicates that the progressive preheating and dilution of the oxidizer and fuel leads to a reduction of the temperature rise in the reaction zone with respect to a non-reacting case; this rise in Case M is less than 200 K. Comparison of computed heat release and CH_2O distributions reveals that stabilization of Case NP and P occurs by an edge flame, while for Case M, it takes place by autoignition. Further investigations on the structure of Case M has been done by flamelet analyses in mixture fraction space. It is found that igniting flamelets, in contrast to steady flamelets, represent very well the structure of Case M at lower axial distances. This observation further emphasizes the stabilization of the Mild case by the autoignition phenomena.
机译:已经进行了数值和实验研究,以获取有关同向火焰向轻度燃烧过渡的结构和稳定机理的知识。总的来说,已经对三个CH_4 / N_2 /氧化剂同流火焰进行了研究,并对燃料和同流物流进行了系统的稀释和预热。这些火焰包括非预热的情况(案例NP),预热的案例(案例P)和温和的案例(案例M),从环境温度稀释至1530 K并预热。通过自发测量温度和物种浓度的径向分布拉曼散射。通过使用GRI 3.0机制的详细化学,多组分混合物平均传输和辐射热损失的光学薄近似,通过对这些情况的稳态模拟进行了详细的计算。在Case NP,Case P的详细计算结果和实验之间以及在Case M的轴向距离较小的情况下,已经找到了总体良好的协议。通过执行其他计算,研究了在计算中使用多组分传输和辐射热损失的重要性。 Case NP的简化模型。比较计算得到的温度分布表明,相对于未反应的情况,氧化剂和燃料的逐步预热和稀释导致反应区温度升高的降低; Case M的这种上升小于200K。计算的热量释放和CH_2O分布的比较表明,Case NP和P的稳定是通过边缘火焰发生的,而Case M则是通过自燃发生的。通过混合物部分空间中的火焰分析,对Case M的结构进行了进一步的研究。发现与稳定火焰相比,点燃火焰小火焰在较低轴向距离处很好地代表了Case M的结构。该观察结果进一步强调了自燃现象对轻度病例的稳定作用。

著录项

  • 来源
    《Combustion and Flame》 |2013年第11期|2359-2374|共16页
  • 作者单位

    Combustion Technology, Mechanical Engineering, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands;

    Faculty of Mathematics and Natural Sciences, Energy and Sustainability Research Institute, University of Groningen, 9747 AG Groningen, The Netherlands;

    Combustion Technology, Mechanical Engineering, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands;

    Combustion Technology, Mechanical Engineering, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands;

    Faculty of Mathematics and Natural Sciences, Energy and Sustainability Research Institute, University of Groningen, 9747 AG Groningen, The Netherlands;

    Combustion Technology, Mechanical Engineering, Eindhoven University of Technology, 5600 MB Eindhoven, The Netherlands;

    Faculty of Mathematics and Natural Sciences, Energy and Sustainability Research Institute, University of Groningen, 9747 AG Groningen, The Netherlands;

  • 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

    Laminar flame; Coflow burner; Mild combustion; Detailed chemistry; Autoignition; Flamelet analysis;

    机译:层流火焰并流燃烧器;轻度燃烧;详细的化学;自燃;火焰分析;

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