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Numerical and Experimental Investigation of Soot Suppression by Acoustic Oscillated Combustion

机译:声学振荡燃烧的烟灰抑制的数值和实验研究

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The soot suppression by acoustic oscillations for acetylene diffusion flames was investigated combining numerical and experimental studies. The combustion and soot formation were predicted by the finite-rate detailed chemistry model and modified Moss-Brookes model, respectively, while the turbulence was predicted by the detached eddy simulation (DES) with a low Reynolds number correction. Experimental results showed that the soot rate almost decreased linearly with the amplitude of acoustic oscillation, and the pinch-off of the flame occurred at a large acoustic oscillation. Numerical results showed that the flame structure was well predicted, while the soot rate was over-predicted at large acoustic oscillations; the consumption of O_(2) increased obviously with the acoustic oscillation. The soot suppression was mainly caused by the decrease of the surface growth rate when the air was pushed toward the flame.
机译:研究了数值和实验研究,研究了对乙炔扩散火焰的声学振荡的烟灰抑制。通过分别的有限速率详细化学模型和改进的苔藓布鲁克斯模型预测了燃烧和烟灰形成,而具有低雷诺数校正的分离的涡流模拟(DES)预测了湍流。实验结果表明,烟灰率几乎与声学振荡的幅度线性降低,并且火焰的夹紧发生在大声振荡处。数值结果表明,火焰结构预测得很好,而在大声振荡中过度预测烟灰率; o_(2)的消耗随声学振荡显然增加。烟灰抑制主要是由于当空气向火焰推动时表面生长速率的降低引起的。

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