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Stretch-rate relationships for turbulent premixed combustion LES subgrid models measured using temporally resolved diagnostics

机译:使用时间分辨诊断法测量的湍流预混燃烧LES亚网格模型的拉伸率关系

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摘要

Temporally resolved measurements of turbulence-flame interaction were used to experimentally determine relationships for the strain-rate and curvature stretch-rate exerted on a premixed flame surface. These relationships include a series of transfer functions that are analogous to, but not equal to, stretch-efficiency functions. The measurements were obtained by applying high-repetition-rate particle image velocimetry in a turbulent slot Bunsen flame and were able to resolve the range of turbulent scales that cause flame surface straining and wrinkling. Fluid control masses were tracked in a Lagrangian manner as they interacted with the flame surface. From each interaction, the spatially and temporally filtered subgrid strain-rate and curvature stretch-rate were measured. By analyzing the statistics of thousands of turbulence-flame interactions, relationships for the strain-rate and curvature stretch-rate were determined that are appropriate for Large Eddy Simulation. It was found that the strain-rate exerted on the flame during these interactions was better correlated with the strength of the subgrid fluid-dynamic strain-rate field than with previously used characteristic strain-rates. Furthermore, stretch-efficiency functions developed from simplified vortex-flame interactions significantly over-predict the measurements. Hence, the proposed relationship relates the strain-rate on the flame to the filtered subgrid fluid-dynamic strain-rate field during real turbulence-flame interactions using an empirically determined Strain-Rate Transfer function. It was found that the curvature stretch-rate did not locally balance the strain-rate as has been proposed in previous models. A geometric relationship was found to exist between the subgrid flame surface wrinkling factor and subgrid curvature stretch-rate, which could be expressed using an empirically determined wrinkling factor transfer function. Curve fits to the measured relationships are provided that could be implemented in numerical simulations of turbulent premixed combustion.
机译:湍流-火焰相互作用的暂时分辨测量值用于实验确定施加在预混火焰表面上的应变率和曲率拉伸率之间的关系。这些关系包括一系列传递函数,这些传递函数类似于但不等于拉伸效率函数。通过在湍流狭缝本生火焰中应用高重复率颗粒图像测速仪获得测量值,并且能够解决引起火焰表面应变和起皱的湍流标度范围。当流体控制质量与火焰表面相互作用时,以拉格朗日方式跟踪流体控制质量。通过每次交互,测量了在空间和时间上过滤的子网格应变率和曲率拉伸率。通过分析数千种湍流-火焰相互作用的统计数据,确定了适合大涡模拟的应变率和曲率拉伸率之间的关系。已经发现,在这些相互作用期间施加在火焰上的应变率与亚网格流体动力应变率场的强度比以前使用的特征应变率更好。此外,由简化的涡流-火焰相互作用产生的拉伸效率函数大大高估了测量结果。因此,使用经验确定的应变率传递函数,在实际湍流与火焰相互作用期间,建议的关系将火焰上的应变率与过滤后的子网格流体动力应变率场相关。已经发现,曲率拉伸率并未像先前模型中所提出的那样局部平衡应变率。发现亚网格火焰表面起皱因子和亚网格曲率拉伸率之间存在几何关系,这可以使用经验确定的起皱因子传递函数来表达。提供了与测量关系的曲线拟合,可以在湍流预混燃烧的数值模拟中实施该拟合。

著录项

  • 来源
    《Combustion and Flame》 |2010年第7期|P.1422-1435|共14页
  • 作者单位

    Department of Aerospace Engineering, The University of Michigan, Ann Arbor, MI 48109, USA Deutsches Zentrum fuer Luft- und Raumfahrt, Institut fuer Verbrennungstechnik, Pfaffenwaldring 38-40, 70569 Stuttgart, Germany;

    rnDepartment of Aerospace Engineering, The University of Michigan, Ann Arbor, MI 48109, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    turbulent premixed combustion; flame stretch; cinema-stereoscopic PIV; large eddy simulation; flame dynamics;

    机译:湍流预混燃烧;火焰伸展电影院立体PIV;大涡模拟火焰动力学;

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