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Computation of Forced Premixed Flames Dynamics

机译:强制预混火焰动力学计算

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摘要

Bluff body stabilized turbulent premixed flames subject to inlet velocity oscillation over a wide range of forcing frequency and amplitude are simulated using a flamelet-based combustion model. Two sets of detailed chemical kinetic schemes are used to model combustion chemistry. It is observed that the computed dynamics of forced flames agree reasonably well with experimental measurements. The flame elongation and shortening at a frequency of 40 Hz and strong flame-vortex interaction at a higher frequency of 160 Hz are captured well in the computations. The global flame describing function extracted from the computational results shows a linear response at 40 Hz and a nonlinear behavior at 160 Hz as observed in the experiments. The nonlinear response is due to vortex roll-up and its subsequent shedding. The quantitative agreement of the computed flame describing function (FDF) with experimental measurement is uniformly good over a wide range of forcing frequency and amplitude. Some influence of chemical kinetics on the FDFs is observed, which mainly stems from the difference in laminar burning velocity and spatial heat release rate distribution.
机译:使用基于小火焰的燃烧模型模拟了在较大的强迫频率和振幅范围内经受入口速度振荡的钝体稳定湍流预混火焰。两组详细的化学动力学方案用于模拟燃烧化学。观察到,强迫火焰的计算动力学与实验测量相当吻合。在计算中可以很好地捕捉到40 Hz频率下的火焰伸长和缩短以及160 Hz较高频率下的强烈火焰涡旋相互作用。从计算结果中提取的全局火焰描述函数在实验中观察到在40 Hz时显示线性响应,在160 Hz时显示非线性行为。非线性响应归因于涡旋卷起及其随后的脱落。在很大的强迫频率和幅度范围内,计算的火焰描述函数(FDF)与实验测量的定量一致性始终很好。观察到化学动力学对FDF的一些影响,这主要是由于层流燃烧速度和空间放热速率分布的差异所致。

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