Validating Soot Models in LES of Turbulent Flames: The Contribution of Soot Subgrid Intermittency Model to The Prediction of Soot Production in an Aero-Engine Model Combustor

L. Tardelli, N. Darabiha, D. Veynante, B. Franzelli
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引用次数: 3

Abstract

Predicting soot production in industrial systems using an LES approach represents a great challenge. Besides the complexity in modeling the multi-scale physicochemical soot processes and their interaction with turbulence, the validation of newly developed models is critical under turbulent conditions. This work illustrates the difficulties in evaluating model performances specific to soot prediction in turbulent flames by considering soot production in an aero-engine combustor. It is proven that soot production occurs only for scarce local gaseous conditions. Therefore, to obtain a statistical representation of such rare soot events, massive CPU resources would be required. For this reason, evaluating soot model performances based on parametric studies, i.e., multiple simulations, as classically done for purely gaseous flames, is CPU high-demanding for sooting flames. Then, a new strategy to investigate modeling impact on the solid phase is proposed. It is based on a unique simulation, where the set of equations describing the solid phase are duplicated. One set accounts for the reference model, while the other set is treated with the model under the scope. Assuming neglected solid phase retro-coupling on the gas phase, the soot scalars from both sets experience the same unique temporal and spatial gas phase evolution isolating the soot model effects from the uncertainties on gaseous models and numerical sensitivities. Finally, the strategy capability is proven by investigating the contribution of the soot subgrid intermittency model to the prediction of soot production in the DLR burner.
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湍流火焰中烟尘模型的验证:烟尘亚网格间歇模型对航空发动机模型燃烧室烟尘产量预测的贡献
使用LES方法预测工业系统中的烟尘产生是一个巨大的挑战。除了模拟多尺度烟尘物理化学过程及其与湍流相互作用的复杂性外,新开发的模型在湍流条件下的验证至关重要。这项工作说明了通过考虑航空发动机燃烧室烟尘的产生来评估湍流火焰中烟尘预测的特定模型性能的困难。证明了烟灰的产生只发生在稀缺的局部气体条件下。因此,要获得这种罕见烟尘事件的统计表示,将需要大量的CPU资源。因此,基于参数研究评估煤烟模型的性能,即多次模拟,如经典的纯气体火焰,对CPU的要求很高。然后,提出了一种新的研究建模对固相影响的策略。它基于一个独特的模拟,其中描述固相的一组方程是重复的。其中一组用于参考模型,而另一组使用范围下的模型进行处理。假设忽略固相对气相的回溯耦合,两组烟尘标量经历相同的独特的时间和空间气相演化,将烟尘模型的影响与气体模型和数值灵敏度的不确定性隔离。最后,通过研究烟尘子网格间歇性模型对DLR燃烧器烟尘产量预测的贡献,验证了该策略的有效性。
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