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AN EXPERIMENTAL STUDY OF EFFECTS OF CONFINEMENT RATIO ON SWIRL STABILIZED FLAME MACROSTRUCTURES

机译:约束比对旋流稳定火焰宏观结构影响的实验研究

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Swirl stabilized premixed flames are common in industrial gas turbines. The flame shape in the combustor is highly related to the combustion stability and the performance of the gas turbine. In the current paper, the effects of confinement on the time averaged flame structures or flame macrostructures are studied experimentally. Experiments are carried out with swirl number S = 0.66 in two cylindrical confinements with diameters of d_i = 39 mm and d_2 = 64 mm and confinement ratio c_1 = 0.148 and c_2 = 0.0567. All the experiments were carried out in atmospheric. CH~* chemiluminescence from the flame was recorded to visualize the flame behavior. An inverse Abel image reconstruction method was employed to better distinguish the flame macrostructures. Different mechanisms forming the time averaged M shape flames are proposed and analyzed. It is found that the confinement wall plays an important role in determining the flame macrostructures. The flow structures including the inner and outer recirculation zones formed in the confinement are revealed to be the main reasons that affects different flame macrostructures. Meanwhile, the alternation of flame shapes determines the flame stability characteristics. A smaller confinement diameter forced the flame front to bend upstream into the outer recirculation zone hence forming a M shape flame. A strong noise caused by the interaction of the flame front in the outer recirculation zone with the combustor wall was observed. Another unsteady behavior of the flame in the bigger combustor, which was caused by the alternation of the flame root position inside and outside the premixing tube, is also presented. The V shape flame in the two combustors radiated weaker chemiluminescence but the main heat release zone was elongated than the M shape flame. Other operating conditions, i.e. total mass flow rate of the air flow and the equivalence ratio also affect the flame macrostructures. The flame blowout limits were also altered under different test conditions. The bigger confinement has better performance in stabilizing the flame by having lower lean blowout limits.
机译:旋流稳定的预混火焰在工业燃气轮机中很常见。燃烧室中的火焰形状与燃气轮机的燃烧稳定性和性能高度相关。在本文中,实验研究了限制对时间平均火焰结构或火焰宏观结构的影响。在直径为d_i = 39 mm和d_2 = 64 mm且限制比c_1 = 0.148和c_2 = 0.0567的两个圆柱形限制区中以旋流数S = 0.66进行实验。所有实验均在大气中进行。记录来自火焰的CH〜*化学发光,以可视化火焰行为。采用逆Abel图像重建方法可以更好地区分火焰宏结构。提出并分析了形成时均M型火焰的不同机理。发现限制壁在确定火焰宏观结构中起重要作用。揭示了在限制内形成的包括内部和外部再循环区的流动结构是影响不同火焰宏观结构的主要原因。同时,火焰形状的变化决定了火焰的稳定性。较小的限制直径迫使火焰前沿向上游弯曲成外部再循环区域,从而形成M形火焰。观察到由外部再循环区中的火焰锋与燃烧室壁的相互作用引起的强烈噪音。还显示了较大燃烧室中火焰的另一不稳定现象,这是由于预混管内部和外部火焰根位置的交替引起的。两个燃烧器中的V形火焰的化学发光强度较弱,但主要的放热区比M形火焰长。其他操作条件,即气流的总质量流率和当量比也影响火焰宏观结构。在不同的测试条件下,火焰喷出极限也发生了变化。较大的限制区具有较低的稀薄喷出极限,在稳定火焰方面具有更好的性能。

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