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Numerical analysis of the acoustic field of reacting flows via acoustic perturbation equations

机译:基于声扰动方程的反应流声场数值分析

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The acoustic radiation of a turbulent non-premixed flame using a hybrid method is numerically simulated. The two-step method consists of an incompressible large-eddy simulation (LES) and acoustic perturbation equations (APE), which are reformulated to account for reacting flow effects (APE-RF). In reacting flows, hybrid methods to compute acoustic radiation have some advantages compared to the direct simulation of the acoustic field using a compressible LES. Considering the different characteristic length scales optimized schemes can be applied to each subproblem, i.e., to the hydrodynamic and the acoustic problem. This is of interest since the fluid mechanics is governed by the combustion process and to compute the highly intricate chemistry tailor-made schemes with reasonable computational costs combustion models can be implemented to resolve this phenomenon by, for instance, preprocessed databases for the chemical reactions, like in the steady flamelet approach. The APE-RF system possesses several source terms on the right-hand side (RHS), which are thoroughly discussed to their relation to various sound mechanisms. The acoustic sources describe the impact of unsteady heat release, non-isomolar combustion, species diffusion, heat diffusion, viscous effects, non-uniform mean flow and non-constant combustion pressure effects, and the influence of acceleration of density inhomogeneities. Moreover, an additional source term within the APE-RF pressure-density relation can be identified to describe the local acoustic wave amplification due to acoustic-flame interaction. It is evidenced that the well-known Rayleigh criterion can be directly given by this source. The unsteady heat release is shown to occur in the total time derivative of the density that is directly provided from an LES solution. By analyzing via the two-step method the acoustic field of an open turbulent non-premixed flame being generated just by the total temporal derivative of the density, and by comparing the numerical data with experimental findings the total substantial derivative is shown to describe for a wide frequency range the essential sound propagation caused by reacting flows. Nevertheless, it is also discussed that to simulate all the details over the complete frequency range additional source mechanisms occurring on the RHS of the APE-RF system are to be considered in the investigation.
机译:数值模拟了使用混合方法的湍流非预混火焰的声辐射。两步方法由不可压缩的大涡流模拟(LES)和声学扰动方程(APE)组成,这些方程被重新公式化以解决反应流效应(APE-RF)。在反应流中,与使用可压缩LES直接模拟声场相比,用于计算声辐射的混合方法具有一些优势。考虑到不同的特征长度尺度,可以将优化方案应用于每个子问题,即,应用于流体动力学和声学问题。由于流体力学受燃烧过程支配,并以合理的计算成本来计算高度复杂的化学定制方案,因此可以采用燃烧模型来解决此现象,例如通过化学反应的预处理数据库来解决这一现象,就像在稳定的小火焰方法中一样。 APE-RF系统在右侧(RHS)拥有多个源术语,对其与各种声音机制的关系进行了详尽的讨论。声源描述了不稳定的热释放,非等摩尔燃烧,物质扩散,热扩散,粘性效应,不均匀的平均流量和非恒定的燃烧压力效应的影响,以及密度不均匀性加速度的影响。此外,可以确定APE-RF压力-密度关系中的其他源项,以描述由于声-火焰相互作用而引起的局部声波放大。有证据表明,众所周知的瑞利准则可以直接由这个来源给出。不稳定的热释放显示为直接由LES溶液提供的密度的总时间导数。通过两步法分析仅由密度的总时间导数产生的湍流非预混明火的声场,并将数值数据与实验结果进行比较,表明总的实质导数可描述宽频率范围,由反作用流引起的基本声音传播。尽管如此,还讨论了要在整个频率范围内模拟所有细节,在研究中要考虑在APE-RF系统的RHS上出现的其他源机制。

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