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Ignition dynamics of an annular combustor equipped with multiple swirling injectors

机译:配备有多个旋流喷射器的环形燃烧器的点火动力学

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摘要

The ignition transient is investigated in this article in a laboratory-scale multiple injector configuration. The analysis specifically focuses on the "light-around" mechanisms that intervene at the start, ensuring flame spreading from one injector to the next, eventually leading to established flames on each injector. The system comprises a plenum feeding premixed gaseous reactants through multiple swirling injectors and an annular combustor formed by two concentric transparent quartz walls that allow full visualization of the flame. Combustion is initiated by a spark igniter located in the neighborhood of one injector. High-speed imaging is used to examine flame propagation and deduce the ignition delay yielding a full light-around of the annular combustor. These data are gathered for a set of operating conditions. Image processing is used to extract the position of the flame front at successive instants. This is then used to identify mechanisms controlling the propagation. It is found that the volumetric expansion across the flame induces an expanding motion that combines with the normal burning velocity and that this defines the flame displacement velocity. In addition, the burned gases formed by ignited injectors convect the flame in the vertical direction, while buoyancy forces accelerate it in the same direction. In azimuthal planes, co-rotating swirlers induce an additional azimuthal velocity component that must be taken into account in the direction of flame propagation. These processes are used to simulate flame spreading from the initial kernel by making use of a modified version of the G-equation. It is found that the simulation provides an approximate description of the evolution of the flame and yields characteristic delay times for light-around, which have the same order of magnitude as those determined experimentally.
机译:本文以实验室规模的多喷油嘴配置研究了点火瞬变。该分析特别着重于在启动时进行干预的“围绕光”机制,以确保火焰从一个喷射器扩散到另一个喷射器,最终导致每个喷射器上都建立起火焰。该系统包括一个通过多个涡旋喷射器供入预混气态反应物的气室和一个由两个同心透明石英壁形成的环形燃烧器,该环形石英壁使火焰完全可见。燃烧由位于一个喷射器附近的火花点火器引发。高速成像用于检查火焰传播并推断出点火延迟,从而使环形燃烧器完全照亮。这些数据是针对一组运行条件收集的。图像处理用于在连续瞬间提取火焰前沿的位置。然后将其用于识别控制传播的机制。发现在火焰上的体积膨胀引起与正常燃烧速度结合的膨胀运动,并且这限定了火焰的位移速度。另外,由点燃的喷射器形成的燃烧气体在垂直方向上使火焰对流,而浮力则在相同方向上使火焰加速。在方位角平面中,同向旋流器会产生一个附加的方位角速度分量,必须在火焰传播的方向上予以考虑。这些过程用于通过使用G方程的修改版本来模拟从初始内核传播的火焰。发现该模拟提供了火焰演变的近似描述,并产生了绕光的特征延迟时间,该延迟时间与实验确定的幅度相同。

著录项

  • 来源
    《Combustion and Flame》 |2013年第8期|1398-1413|共16页
  • 作者单位

    CNRS, UPR 288, Laboratoire d'Energetique Moleculaire et Macroscopique Combustion (EM2C), Grande voie des vignes, 92295 Chatenay-Malabry, France,Ecole centrale Paris, 92295 Chatenay-Malabry, France,Snecma (Croupe Safran), 77550 Moissy-Cramayel, France;

    CNRS, UPR 288, Laboratoire d'Energetique Moleculaire et Macroscopique Combustion (EM2C), Grande voie des vignes, 92295 Chatenay-Malabry, France,Ecole centrale Paris, 92295 Chatenay-Malabry, France;

    CNRS, UPR 288, Laboratoire d'Energetique Moleculaire et Macroscopique Combustion (EM2C), Grande voie des vignes, 92295 Chatenay-Malabry, France,Ecole centrale Paris, 92295 Chatenay-Malabry, France;

    CNRS, UPR 288, Laboratoire d'Energetique Moleculaire et Macroscopique Combustion (EM2C), Grande voie des vignes, 92295 Chatenay-Malabry, France,Ecole centrale Paris, 92295 Chatenay-Malabry, France;

    CNRS, UPR 288, Laboratoire d'Energetique Moleculaire et Macroscopique Combustion (EM2C), Grande voie des vignes, 92295 Chatenay-Malabry, France,Ecole centrale Paris, 92295 Chatenay-Malabry, 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

    Ignition dynamics; Swirling injectors; Flame spreading; Annular combustion chamber;

    机译:点火动力学;旋流喷油器;火焰蔓延;环形燃烧室;

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