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Blow-off characteristics of turbulent premixed flames in curved-wall Jet Burner

机译:弯壁射流燃烧器中湍流预混火焰的吹散特性

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摘要

This study concerns the flame dynamics of a curved-wall jet (CWJ) stabilized turbulent premixed flame as it approaches blow-off conditions. Time resolved OH planar laser-induced fluorescence (PLIF) delineated reaction zone contours and simultaneously stereoscopic particle image velocimetry (SPIV) quantified the turbulent flow field features. Ethylene/air flames were stabilized in CWJ burner to determine the sequence of events leading to blowoff. For stably burning flames far from blowoff, flames are characterized with a recirculation zone (RZ) upstream for flame stabilization followed by an intense turbulent interaction jet (IJ) and merged-jet regions downstream; the flame front counterparts the shear layer vortices. Near blowoff, as the velocity of reactants increases, high local stretch rates exceed the extinction stretch rates instantaneously resulting in localized flame extinction along the IJ region. As Reynolds number (Re) increases, flames become shorter and are entrained by larger amounts of cold reactants. The increased strain rates together with heat loss effects result in further fragmentation of the flame, eventually leading to the complete quenching of the flame. This is explained in terms of local turbulent Karlovitz stretch factor (K) and principal flow strain rates associated with Cudcontours. Hydrogen addition and increasing the RZ size lessen the tendency of flames to be locally extinguished.
机译:这项研究涉及弯曲壁射流(CWJ)稳定的湍流预混火焰在接近吹扫条件时的火焰动力学。时间分辨的OH平面激光诱导的荧光(PLIF)描绘了反应区的轮廓,同时立体粒子图像测速仪(SPIV)量化了湍流场特征。乙烯/空气火焰在CWJ燃烧器中稳定下来,以确定导致爆燃的事件顺序。为了稳定地燃烧远离喷火的火焰,火焰的特征是在上游设有再循环区(RZ)以稳定火焰,随后是强烈的湍流相互作用射流(IJ)和下游的合并射流区域。火焰锋对应剪切层涡旋。随着反应物速度的增加,吹散接近,高的局部拉伸速率瞬间超过了熄灭拉伸速率,从而导致沿IJ区域的局部火焰熄灭。随着雷诺数(Re)的增加,火焰会变短,并被大量冷反应物夹带。增加的应变率以及热损失效应导致火焰进一步破碎,最终导致火焰完全熄灭。这是根据局部湍流Karlovitz拉伸因子(K)和与C udcontours相关的主流动应变率来解释的。加氢和增加RZ尺寸可减少火焰局部熄灭的趋势。

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