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A DRD finite element formulation for computing turbulent reacting flows in gas turbine combustors

机译:用于计算燃气轮机燃烧室中湍流反应流的DRD有限元公式

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摘要

An effective multiscale treatment of turbulent reacting flows is presented with the use of a stabilized finite element formulation. The method proposed is developed based on the streamline-upwind/Petrov–Galerkin (SUPG) formulation, and includes discontinuity capturing in the form of a new generation “DRD” method, namely the “DRDJ” technique. The stabilized formulation is applied to finite-rate chemistry modelling based on mixture-fraction approaches with the so-called presumed-PDF technique. The turbulent combustion process is simulated for an aero-engine combustor configuration of RQL concept in non-premixed flame regime. The comparative analysis of the temperature and velocity fields demonstrate that the proposed SUPG+DRDJ formulation outperforms the stand-alone SUPG method. The improved accuracy is demonstrated in terms of the combustor overall performance, and the mechanisms involved in the distribution of the numerical diffusivity are also discussed.
机译:通过使用稳定的有限元公式,提出了一种有效的多尺度湍流反应流处理方法。提出的方法是基于流线上风/ Petrov-Galerkin(SUPG)公式开发的,并且包括以新一代“ DRD”方法(即“ DRDJ”技术)形式进行的不连续性捕获。该稳定的配方基于所谓的假定PDF技术的基于混合分数方法的有限速率化学建模。在非预混火焰状态下,对RQL概念的航空发动机燃烧器配置模拟了湍流燃烧过程。温度和速度场的比较分析表明,所提出的SUPG + DRDJ配方优于独立的SUPG方法。就燃烧器的整体性能而言,提高了精度,并讨论了数值扩散率分布所涉及的机制。

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