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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Stabilization Mechanisms of Swirling Premixed Flames With an Axial-Plus-Tangential Swirler
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Stabilization Mechanisms of Swirling Premixed Flames With an Axial-Plus-Tangential Swirler

机译:轴向加切向旋流器旋流预混火焰的稳定机理

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摘要

The stabilization of premixed flames within a swirling flow produced by an axial-plus tangential swirler is investigated in an atmospheric test rig. In this system, flames are stabilized aerodynamically away from the solid components of the combustor without the help of any solid anchoring device. Experiments are reported for lean CH4/air mixtures, eventually also diluted with N-2, with injection Reynolds numbers varying from 8500 to 25,000. Changes of the flame shape are examined with OH* chemiluniinescence and OH laser-induced fluorescence measurements as a function of the operating conditions. Particle image velocimetry (PIV) measurements are used to reveal the structure of the velocity field in nonreacting and reacting conditions. It is shown that the axial-plus-tangential swirler allows to easily control the flame shape and the position of the flame leading edge with respect to the injector outlet. The ratio of the bulk injection velocity over the laminar burning velocity U-b/S-L, the adiabatic flame temperature T-ad, and the swirl number S-0 are shown to control the flame shape and its position inside the combustion chamber. It is then shown that the axial velocity field produced by the axial-plus-tangential swirler is different from those produced by purely axial or radial devices. It takes here a W-shape profile with three local maxima and two minima. The mean turbulent flame front also takes this W-shape in an axial plane, with two lower positions located slightly off-axis and corresponding to the positions where the axial flow velocity is the lowest. It is finally shown that these positions can he inferred from axial flow velocity profiles under non reacting conditions.
机译:在大气试验台上研究了轴向正切旋流器产生的旋流内预混火焰的稳定性。在该系统中,无需任何固体锚固装置,火焰就可以从燃烧器的固体成分中获得空气动力学上的稳定。据报道,实验中使用了稀薄的CH4 /空气混合物,最终也用N-2稀释,注入的雷诺数为8500至25,000。火焰形状的变化通过OH *化学发光和OH激光诱导的荧光测量作为操作条件的函数进行检查。粒子图像测速(PIV)测量用于揭示非反应和反应条件下速度场的结构。结果表明,轴向正切旋流器可轻松控制火焰形状和火焰前缘相对于喷射器出口的位置。示出了整体喷射速度与层状燃烧速度U-b / S-L,绝热火焰温度T-ad和旋流数S-0之比,以控制火焰形状及其在燃烧室内的位置。然后表明,轴向加切向旋流器产生的轴向速度场与纯轴向或径向装置产生的轴向速度场不同。它在这里采用W形轮廓,具有三个局部最大值和两个最小值。平均湍流火焰锋在轴向平面中也呈W形,其中两个下部位置稍微偏离轴线,并且对应于轴向流速最低的位置。最终表明,这些位置可以从非反应条件下的轴向流速曲线中推断出来。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2018年第8期|081502.1-081502.9|共9页
  • 作者单位

    Air Liquide, Ctr Rech Paris Saclay, F-92295 Les Loges En Josas, Saclay, France;

    Univ Paris Saclay, Cent Supelec, CNRS, Lab EM2C, 3 Rue Joliot Curie, F-91192 Gif Sur Yvette, France;

    Air Liquide, Ctr Rech Paris Saclay, F-92295 Les Loges En Josas, Saclay, France;

    Univ Toulouse, CNRS, INPT, UPS,IMFT, F-31400 Toulouse, France;

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