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Effects of Flow Structure Dynamics on Thermoacoustic Instabilities in Swirl-Stabilized Combustion

机译:旋流稳定燃烧中流动结构动力学对热声不稳定性的影响

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The thermoacoustic coupling caused by dynamic flow/flame interactions was investigated in a gas-turbine model combustor using high-repetition-rate measurements of the three-component velocity field, OH laser-induced fluorescence, and OH~* chemiluminescence. Three fuel-lean, swirl-stabilized flames were investigated, each of which underwent self-excited thermoacoustic pulsations. The most energetic flow structure at each condition was a helical vortex core that circumscribed the combustor at a frequency that was independent of the acoustics. Resolving the measurement sequence with respect to both the phase in the thermoacoustic cycle and the azimuthal position of the helix allowed quantification of the oscillatory flow and flame dynamics. Periodic vortex/flame interactions caused by deformation of the helices generated local heat-release oscillations having spatially complex phase distributions relative to the acoustics. The local thermoacoustic coupling, determined by statistically solving the Rayleigh integral, showed intertwined regions of positive and negative coupling due to these vortices. In the quietest flame, the helical vortex created a large region of negative coupling that helped damp the oscillations. In the louder flames, the shapes of the oscillating vortices and flames were such that large regions of positive coupling were generated, driving the instability. From these observations, flame/vortex configurations that promote stability are identified.
机译:在燃气轮机模型燃烧器中,通过对三分量速度场,OH激光诱导的荧光和OH〜*化学发光的高重复率测量,研究了由动态流动/火焰相互作用引起的热声耦合。研究了三种贫油,旋流稳定的火焰,每个火焰都经历了自激热声脉冲。在每种情况下,最活跃的流动结构是螺旋涡流核,该螺旋涡核以与声学无关的频率围绕燃烧器。通过解析热声循环中的相位和螺旋线的方位角位置的测量序列,可以量化振荡流和火焰动力学。由螺旋的变形引起的周期性涡旋/火焰相互作用产生了局部放热振荡,该振荡具有相对于声学的空间上复杂的相位分布。通过统计求解瑞利积分确定的局部热声耦合显示出由于这些涡旋而交织在一起的正负耦合区域。在最安静的火焰中,螺旋涡旋形成了很大的负耦合区域,有助于抑制振荡。在较大的火焰中,振荡涡旋和火焰的形状使得产生大面积的正耦合,从而导致不稳定。从这些观察结果中,确定了促进稳定性的火焰/涡旋构型。

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