首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >FLAME DENSITY RATIO EFFECTS ON VORTEX DYNAMICS OF HARMONICALLY EXCITED BLUFF BODY STABILIZED FLAMES
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FLAME DENSITY RATIO EFFECTS ON VORTEX DYNAMICS OF HARMONICALLY EXCITED BLUFF BODY STABILIZED FLAMES

机译:对涡流性凹槽体稳定火焰的涡旋动力学的火焰密度比效应

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This paper presents an experimental study of acoustically forced bluff body stabilized flames, motivated by the problem of combustion instabilities. The goal of the work is to better understand the flame and flow behavior as functions of the proximity of the acoustic frequency to natural hydrodynamic instability frequencies. It is well known that iso-density, high Re bluff body wakes are globally unstable, exhibiting the Von Karman vortex street. In reacting flows, however, this global mode is suppressed if the density ratio across the flame is sufficiently high. Thus, the density ratio is an important parameter that influences the global mode growthrate. In this study, the flame was longitudinally forced over a range of hydrodynamic global mode to forcing frequency ratios, density ratios, and forcing amplitudes. Longitudinal forcing leads to the symmetric rollup of the two separating shear layers. When the forcing frequency is in the vicinity of the wake's global mode frequency, the global mode locks into the forcing frequency, and the symmetric shear layers quickly stagger as they convect downstream, leading to a large scale, sinuous flapping of the wake and flame. The axial position at which staggering occurs is a function of the forcing amplitude and the proximity of the forcing frequency to the global mode frequency. The lock-in phenomenon amplifies the flame's motion at the forcing frequency. However, if the vortices stagger to a fully sinuous structure, this causes a significant reduction in the flame's oscillatory heat release through phase cancellation of the upper and lower flame branches. Therefore, if a low density ratio flame is subjected to longitudinal acoustic forcing near its global mode frequency, it will respond with weaker heat release fluctuations than it would away from lock-in. This is true even though the local degree of flame flapping is quite significant. Thus, the results of this study show some phenomena that contradict conventional notions, namely that forcing a globally unstable flow near its global mode frequencies can lead to diminished local heat release oscillations.
机译:本文介绍了声学迫切的虚构体稳定的火焰的实验研究,由燃烧不稳定性问题为动机。该工作的目标是更好地了解火焰和流动行为作为声频对自然流体动力不稳定频率的函数的函数。众所周知,ISO密度高,露头体唤醒是全球不稳定的,展示von Karman涡流街。然而,在反应流动中,如果火焰的密度比足够高,则抑制该全局模式。因此,密度比是影响全局模式增殖的重要参数。在该研究中,火焰纵向地迫使一系列流体动力学全球模式,以强制频率比,密度比和强制振荡。纵向强制导致两个分离剪切层的对称汇总。当强制频率位于唤醒的全局模式频率附近时,全局模式锁定到迫使频率,并且当它们的下游时,对称剪切层很快错开,导致唤醒和火焰的大规模,蜿蜒的振动。发生惊人的轴向位置是迫使幅度和迫使频率与全局模式频率的函数的函数。锁定现象在强制频率下放大了火焰的运动。然而,如果涡流错开了完全扭曲的结构,这导致火焰的振荡热释放通过相位和下火焰分支的相位消除显着降低。因此,如果低密度比火焰在其全球模式频率附近进行纵向声学迫使,则它将呈较弱的热释放波动响应,而不是远离锁定。即使局部的火焰漂移是非常重要的,这也是如此。因此,该研究的结果表明了一些与传统观念相矛盾的现象,即迫使在其全局模式频率附近的全球不稳定流动可能导致局部热释放振荡减少。

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