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Prediction of momentum and scalar transport in turbulent swirling flows with an objective Reynolds-stress transport closure

机译:基于客观雷诺应力传递封闭的湍流涡流中动量和标量传递的预测

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摘要

The accurate prediction of turbulent swirling flows requires the use of a differential Reynolds-stress transport model to close the time-averaged Navier-Stokes equations. The performance of such model is largely determined by the way in which the fluctuating pressure-strain correlations are approximated. A number of alternative approximations are available, all of which depend explicitly on the mean vorticity tensor. Such dependence renders a constitutive relation inconsistent with the principle of Material Frame Indifference (MFI). In this paper, an objective model (i.e. one which is consistent with MFI) for the pressure-strain correlations is presented. This model, which was developed using Tensor Representation Theory, has fewer terms than the conventional alternatives and is therefore easier to implement in computational codes. Moreover, the model was calibrated to correctly reproduce the relative stress levels in both free and wall-bounded flows without the need to employ wall-damping corrections. The performance of this model is assessed using experimental data from both weakly- and strongly-swirled jets. Comparisons are also made with results obtained using three widely-used alternative models for the pressure-strain correlations. It is found that the objective model, although simpler in formulation than the others, yields results that are generally in closer correspondence with the data. The paper also reports on the prediction of mass transfer in a swirling jet. The case considered was that of a co-axial, strongly-swirled flow with an outer annular air stream and an inner helium jet. Swirl was imparted to the outer stream only. The concentration of helium was predicted using a differential scalar-flux transport closure. Close agreement was obtained with the measured concentrations. Analysis of the predicted mass fluxes revealed that the turbulent diffusivity is strongly anisotropic in this flow.
机译:湍流旋流的准确预测需要使用微分雷诺应力传输模型来关闭时间平均的Navier-Stokes方程。这种模型的性能在很大程度上取决于近似波动压力-应变相关性的方式。有许多可供选择的近似值,所有这些近似值都明显取决于平均涡度张量。这种依赖性使本构关系与“材料框架无差异”(MFI)原理不一致。在本文中,提出了一种用于压力-应变相关性的客观模型(即与MFI一致的模型)。该模型是使用张量表示理论开发的,其术语少于常规替代方案,因此更易于在计算代码中实现。此外,该模型经过校准,可以正确地再现自由流动和壁边界流动中的相对应力水平,而无需使用壁阻尼校正。使用来自弱旋流和强旋流喷嘴的实验数据评估了该模型的性能。还使用压力-应变相关性使用三个广泛使用的替代模型获得的结果进行了比较。发现目标模型虽然在形式上比其他模型更简单,但得出的结果通常与数据更接近。本文还报道了涡旋射流中传质的预测。所考虑的情况是同轴,强旋流,带有外部环形空气流和内部氦气射流。旋流仅被赋予外部流。使用差分标量通量运输封闭装置可预测氦气的浓度。与测得的浓度有密切的一致性。对预测的质量通量的分析表明,在该流中湍流扩散率是强烈各向异性的。

著录项

  • 来源
    《Heat and mass transfer》 |2009年第10期|1271-1283|共13页
  • 作者单位

    Department of Civil & Environmental Engineering, University of California, Davis, CA 95616, USA;

    Institut fuer Thermodynamik der Luft- und Raumfahrt (ITLR), Universitaet Stuttgart, 70569 Stuttgart, Germany;

    Institut fuer Thermodynamik der Luft- und Raumfahrt (ITLR), Universitaet Stuttgart, 70569 Stuttgart, Germany;

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

    turbulence modeling; swirl; scalar fluxes; pressure-strain correlations; grid convergence index;

    机译:湍流建模漩涡;标量通量压力-应变相关性;网格收敛指数;

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