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An application of a two-equation model of turbulence to three-dimensional chemically reacting flows

机译:湍流两方程模型在三维化学反应流中的应用

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摘要

A numerical study of three dimensional chemically reacting and non-reacting flowfields is conducted using a two-equation model of turbulence. A generalized flow solver using an implicit Lower-Upper (LU) diagonal decomposition numerical technique and finite-rate chemistry has been coupled with a low-Reynolds number two-equation model of turbulence. This flow solver is then used to study chemically reacting turbulent supersonic flows inside combustors with synergetic fuel injectors. The reacting and non-reacting turbulent combustor solutions obtained are compared with zero-equation turbulence model solutions and with available experimental data. The hydrogen-air chemistry is modeled using a nine-species/eighteen reaction model. A low-Reynolds number k-epsilon model was used to model the effect of turbulence because, in general, the low-Reynolds number k-epsilon models are easier to implement numerically and are far more general than algebraic models. However, low-Reynolds number k-epsilon models require a much finer near-wall grid resolution than high-Reynolds number models to resolve accurately the near-wall physics. This is especially true in complex flowfields, where the stiff nature of the near-wall turbulence must be resolved. Therefore, the limitations imposed by the near-wall characteristics and compressible model corrections need to be evaluated further. The gradient-diffusion hypothesis is used to model the effects of turbulence on the mass diffusion process. The influence of this low-Reynolds number turbulence model on the reacting flowfield predictions was studied parametrically.
机译:使用湍流的两方程模型对三维化学反应和非反应流场进行了数值研究。使用隐式下-上(LU)对角分解数值技术和有限速率化学的广义流动求解器已与湍流的低雷诺数二方程模型耦合。然后,该流动求解器用于研究具有协同燃料喷射器的燃烧室内的湍流超音速流的化学反应。将获得的反应性和非反应性湍流燃烧器解决方案与零方程湍流模型解决方案和可用的实验数据进行比较。氢-空气化学是使用九种/十八种反应模型建模的。使用低雷诺数k-ε模型来模拟湍流的影响,因为通常,低雷诺数k-ε模型比数字模型更容易实现,并且比代数模型更通用。但是,与高雷诺数模型相比,低雷诺数k-ε模型需要更高的近壁网格分辨率,才能准确地解析近壁物理学。在复杂的流场中尤其如此,必须解决近壁湍流的刚性问题。因此,需要进一步评估近壁特征和可压缩模型校正带来的限制。梯度扩散假设用于模拟湍流对质量扩散过程的影响。通过参数研究了该低雷诺数湍流模型对反应流场预测的影响。

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    Lee, J.;

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  • 年度 1994
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