紊流混合对流通过不同加热壁面通道的相干结构

Q1 Mathematics
Claus Wagner, Tim Wetzel
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引用次数: 1

摘要

本文采用直接数值模拟的方法,从湍流速度、压力和温度波动的热诱导衰减和放大的角度,研究了不同加热垂直通道中混合对流湍流结构的发生和形状。结果表明,在加热壁面和冷却壁面附近,壁面法向动量输运分别减少和增加,这导致在辅助流和逆向流中,顺流速度分量的湍流速度波动分别减少和增加。在辅助流中,相应的流动结构更平滑、更快、更温暖,并沿主流排列,而在反流中,较冷的结构磨损更严重,方向性更差。辅助流中的暖流结构总体上比相反流中的冷流结构更稳定。此外,研究还发现,最大温度波动的位置向受热壁面移动,因此在两个壁面产生的扫描受到前者的不同影响。因此,在辅助流中波动发展的距离和时间周期比在反向流中短。进一步表明,流向涡结构通常在掠涡或喷射涡上方出现偏右或偏左的现象,相关系数随格拉什夫数的增加而减小,表明涡结构减弱。由于涡度、λ 2值或rortex值的分布与压力波动的最小值没有很好的相关性,因此它们不能清晰地识别涡结构。最后,通过对湍流动能预算的分析,证实了速度波动只受浮力的间接影响。因此,湍流速度波动的衰减和放大分别体现在辅助流和反向流中雷诺数剪应力的减小和增大上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Coherent structures in turbulent mixed convection flows through channels with differentially heated walls

Coherent structures in turbulent mixed convection flows through channels with differentially heated walls

The occurrence and shape of turbulent structures in mixed convection flows through a differently heated vertical channel are investigated in terms of thermally induced attenuation and amplification of turbulent velocity, pressure, and temperature fluctuations using direct numerical simulations. It is shown that the wall-normal momentum transport is decreased and increased near the heated and cooled wall, respectively, and that this leads to a reduced and elevated production of turbulent velocity fluctuations in the streamwise velocity component in the aiding and opposing flow, respectively. The corresponding flow structures are smoother, faster and warmer in the aiding flow and aligned along the main flow, while the colder structures in the opposing flow are more frayed and less directed. The warmer flow structures in the aiding flow are overall more stable than the colder structures in the opposing flow. Besides, the study reveals that the position of the maximum temperature fluctuations moves toward the heated wall, so that the sweeps produced at the two walls are affected differently by the former. As a consequence, the distance and time period over which the fluctuations develop in the aiding flow are shorter than in the opposing flow. It is further shown that vortex structures oriented in the streamwise direction usually arise with an offset to the right or left above a sweep or an ejection, whereby the decreasing values of the correlation coefficients with increasing Grashof number indicate a weakening of the vortex structures. Since none of the evaluated vortex criteria, that is, the distributions of the vorticity, λ 2 - value or Rortex-value correlate well with the evaluated minima of the pressure fluctuations, they do not allow a clear identification of the vortex structures. Finally, analyzing the budget of the turbulent kinetic energy it is confirmed that the velocity fluctuations are only indirectly influenced by the buoyancy force. Thus, the attenuation and amplification of the turbulent velocity fluctuations is reflected in the reduction and exaggeration of the Reynolds shear stresses in the aiding and opposing flow, respectively.

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来源期刊
GAMM Mitteilungen
GAMM Mitteilungen Mathematics-Applied Mathematics
CiteScore
8.80
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发文量
23
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