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首页> 外文期刊>Journal of Fluid Mechanics >Compressibility effects on energy exchange mechanisms in a spatially developing plane free shear layer
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Compressibility effects on energy exchange mechanisms in a spatially developing plane free shear layer

机译:空间显影平面自由剪切层中能量交换机制的可压缩性效应

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摘要

The compressibility effects on energy exchange mechanisms in a three-dimensional, spatially developing plane free shear layer are investigated via data produced by direct numerical simulation. The compressible shear layer is simulated using a high-order discontinuous spectral element method for convective Mach numbers M-c = 0.3, 0.5 and 0.7. The energy exchange mechanisms in the flow are examined by analysing the budget terms of mean kinetic, internal and turbulent kinetic energy transport equations, in both transition and turbulent regions. The results show that turbulent production, turbulent viscous dissipation, mean viscous dissipation, pressure dilatation and enthalpic production are the main mechanisms responsible for energy exchange among different forms of energy. The effects of compressibility on energy transfer mechanisms are studied based on the analyses of those five budget terms. The primary budget terms evolve differently in the transition and turbulent regions and change significantly for varying compressibility. In the transition region, a double-peak variation becomes a single peak in the streamwise profile of the turbulent production as M-c increases from 0.3 to 0.7, due to significant changes in the vortex pairing structures. The shear layer centre slightly shifts to the high-speed side due to the appearance of the velocity deficit. The velocity deficit presence distance (VDPD) becomes longer as compressibility increases. However, in the turbulent region, the cross-stream profiles of the main budget terms significantly shift to the low-speed side because of the asymmetric mass entrainment and shift even further as M-c increases.
机译:通过直接数值模拟得到的数据,研究了压缩性对三维空间发展的平面自由剪切层中能量交换机制的影响。对流马赫数M-c=0.3、0.5和0.7时,可压缩剪切层采用高阶不连续谱元法进行模拟。通过分析过渡区和湍流区的平均动能、内部动能和湍流动能传输方程的预算项,研究了流动中的能量交换机制。结果表明,湍流产生、湍流粘性耗散、平均粘性耗散、压力膨胀和焓产生是不同形式能量之间能量交换的主要机制。在分析这五个预算项的基础上,研究了压缩性对能量传递机制的影响。在过渡区和湍流区,初级预算项的演变不同,并且随着压缩性的变化而显著变化。在过渡区,由于涡对结构的显著变化,当M-c从0.3增加到0.7时,湍流产生的流向剖面中的双峰变化变成单峰。由于速度亏损的出现,剪切层中心略微向高速侧移动。随着压缩性的增加,速度亏损存在距离(VDPD)变长。然而,在湍流区,由于非对称质量夹带,主要预算项的横流剖面显著向低速侧移动,并且随着M-c的增加,横流剖面进一步移动。

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