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Theory of the propagation dynamics of spiral edges of diffusion flames in von Karman swirling flows

机译:von Karman旋流中扩散火焰螺旋边缘传播动力学的理论

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摘要

This analysis addresses the propagation of spiral edge flames found in von Karman swirling flows induced in rotating porous-disk burners. In this configuration, a porous disk is spun at a constant angular velocity in an otherwise quiescent oxidizing atmosphere. Gaseous methane is injected through the disk pores and burns in a flat diffusion flame adjacent to the disk. Among other flame patterns experimentally found, a stable, rotating spiral flame is observed for sufficiently large rotation velocities and small fuel flow rates as a result of partial extinction of the underlying diffusion flame. The tip of the spiral can undergo a steady rotation for sufficiently large rotational velocities or small fuel flow rates, whereas a meandering tip in an epicycloidal trajectory is observed for smaller rotational velocities and larger fuel flow rates. A formulation of this problem is presented in the equidiffusional and thermodiffusive limits within the framework of one-step chemistry with large activation energies. Edge-flame propagation regimes are obtained by scaling analyses of the conservation equations and exemplified by numerical simulations of straight two-dimensional edge flames near a cold porous wall, for which lateral heat losses to the disk and large strains induce extinction of the trailing diffusion flame but are relatively unimportant in the front region, consistent with the existence of the cooling tail found in the experiments. The propagation dynamics of a steadily rotating spiral edge is studied in the large-core limit, for which the characteristic Markstein length is much smaller than the distance from the center at which the spiral tip is anchored. An asymptotic description of the edge tangential structure is obtained, spiral edge shapes are calculated, and an expression is found that relates the spiral rotational velocity to the rest of the parameters. A quasie-static stability analysis of the edge shows that the edge curvature at extinction in the tip region is responsible for the stable tip anchoring at the core radius. Finally, experimental results are analyzed, and theoretical predictions are tested.
机译:该分析解决了在旋转多孔盘式燃烧器中诱发的冯·卡曼旋流中发现的螺旋边缘火焰的传播。在这种构造中,多孔盘在否则为静态的氧化气氛中以恒定角速度旋转。气态甲烷通过圆盘孔注入,并在靠近圆盘的平面扩散火焰中燃烧。在实验中发现的其他火焰模式中,由于下面的扩散火焰部分熄灭,因此观察到稳定的旋转螺旋火焰,具有足够大的旋转速度和较小的燃料流量。对于足够大的旋转速度或较小的燃料流率,螺旋形尖端可以进行稳定旋转,而对于较小的旋转速度和较大的燃料流率,可以观察到外摆线轨迹中的曲折尖端。在具有大活化能的一步化学过程中,在等扩散和热扩散极限范围内提出了该问题的公式。边缘火焰的传播方式是通过对守恒方程的定标分析获得的,并通过在冷的多孔壁附近的二维直边火焰的数值模拟来举例说明,对于这种情况,圆盘的侧向热损失和较大的应变会导致尾随扩散火焰的消失。但在前部区域相对不重要,这与实验中发现的冷却尾部的存在相一致。在大铁心极限中研究了稳定旋转的螺旋边的传播动力学,为此,马克斯坦的特征长度远小于距螺旋尖端锚定中心的距离。获得渐近描述的边缘切线结构,计算出螺旋形的边缘形状,并找到一个表达式,将螺旋形的旋转速度与其余参数联系起来。边缘的准静态稳定性分析表明,尖端区域内的消光边缘曲率是导致尖端在核心半径处锚固的原因。最后,对实验结果进行了分析,并对理论预测进行了检验。

著录项

  • 来源
    《Combustion and Flame》 |2011年第2期|p.255-272|共18页
  • 作者单位

    Department of Mechanical and Aerospace Engineering, University of California San Diego, La Jolla, CA 92093-0411, USA;

    rnNational Center for Space Exploration Research, NASA Glenn Research Center, Cleveland, OH 44135, USA;

    rnDepartment of Mechanical and Aerospace Engineering, University of California San Diego, La Jolla, CA 92093-0411, USA;

  • 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

    edge flames; triple flames; non-premixed combustion; spiral waves; flame extinction; swirling flows;

    机译:边缘火焰三重火焰;非预混燃烧螺旋波火焰熄灭;旋流;

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