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Dispersion of Entropy Perturbations Transporting through an Industrial Gas Turbine Combustor

机译:通过工业燃气轮机燃烧室的熵扰动的扩散

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摘要

In the context of combustion noise and combustion instabilities, the transport of entropy perturbations through highly simplified turbulent flows has received much recent attention. This work performs the first systematic study into the transport of entropy perturbations through a realistic gas turbine combustor flow-field, exhibiting large-scale hydrodynamic flow features in the form of swirl, separation, recirculation zones and vortex cores, these being ubiquitous in real combustor flows. The reacting flow-field is simulated using low Mach number large eddy simulations, with simulations validated by comparison to available experimental data. A generic artificial entropy source, impulsive in time and spatially localized at the flame-front location, is injected. The conservation equation describing entropy transport is simulated, superimposed on the underlying flow-field simulation. It is found that the transport of entropy perturbations is dominated by advection, with both thermal diffusion and viscous production being negligible. It is furthermore found that both the mean flow-field and the large-scale unsteady flow features contribute significantly to advective dispersion — neither can be neglected. The time-variation of entropy perturbation amplitude at combustor exit is well-modelled by a Gaussian profile, whose dispersion exceeds that corresponding to a fully-developed pipe mean flow profile roughly by a factor of three. Finally, despite the attenuation in entropy perturbation amplitude caused by advective dispersion, sufficient entropy perturbation strength is likely to remain at combustor exit for entropy noise to make a meaningful contribution at low frequencies.
机译:在燃烧噪声和燃烧不稳定性的背景下,通过高度简化的湍流进行的熵扰动的传输受到了近来的关注。这项工作是对熵扰动在现实的燃气轮机燃烧器流场中的传输进行的首次系统研究,具有涡旋,分离,再循环区和涡流核形式的大规模流体动力流动特征,这些特征在实际燃烧器中无处不在流。使用低马赫数大型涡流模拟法模拟反应流场,并通过与可用实验数据进行比较来验证模拟结果。注入了一个普通的人工熵源,该源在时间上是脉冲的并且在空间上位于火焰前部位置。模拟描述熵传输的守恒方程,将其叠加在基础流场模拟上。发现熵扰动的传输以对流为主,热扩散和粘性产生均可以忽略不计。此外,还发现,平均流场和大规模非稳态流特征都对对流扩散起了重要作用-均不能忽略。燃烧室出口处的熵扰动幅度的时变由高斯分布图很好地建模,其分布比对应于充分发展的管道平均流量分布的色散超过约三倍。最后,尽管由于对流弥散引起的熵扰动幅度的衰减,燃烧室出口处仍可能保留足够的熵扰动强度,以使熵噪声在低频产生有意义的贡献。

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