Turbulent kinetic energy spectra transport in particle-laden compressible turbulent boundary layers

IF 3.8 2区 工程技术 Q1 MECHANICS
Ming Yu , Qian Wang , Yexuan Xie , Siwei Dong , Xianxu Yuan
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Abstract

In the present study, we perform direct numerical simulations to investigate the kinetic energy transfer in the physical and spectral spaces in compressible turbulent boundary layers at the free-stream Mach number of 6.0 laden with particles at different mass loadings. We found that the non-monotonic variation of the streamwise velocity fluctuation intensities with the increasing mass loading should be attributed to the two counteracting factors, i.e. the reduced velocity streaks that participate in the near-wall self-sustaining cycles, and the strengthened larger-scale velocity fluctuations induced by the comparatively high Stokes number particles. The analysis of the turbulent kinetic energy spectra transport equation shows that the production term is reduced in the near-wall region but enhanced in the outer region, which is balanced by the inter-scale energy transfer and the work of the particle force on the fluid. The cross-stream velocity fluctuations, on the other hand, manifest a monotonic reduction in magnitude. It is found that the abatement of the cross-stream velocity fluctuations near the wall is ascribed to the lower pressure-strain term that transfers the energy from the streamwise component, while the suppression in the outer region to the weaker spatial diffusion, the stronger inter-scale energy transfer and the negative work of the particle feedback force. Compressibility effects, reflected by the work of pressure on flow dilatation, are alleviated at higher particle mass loadings.

Abstract Image

载粒子可压缩湍流边界层中的湍流动能谱输运
在本研究中,我们采用直接数值模拟的方法研究了在不同质量载荷下,当自由流马赫数为6.0时,可压缩湍流边界层中动能在物理空间和光谱空间的传递。研究发现,随着质量载荷的增加,流向速度波动强度的非单调变化应归因于两个抵消因素,即参与近壁自持循环的速度条纹减少,以及相对较高的斯托克斯数粒子引起的大尺度速度波动加强。对湍流动能谱输运方程的分析表明,产生项在近壁区减小,而在外壁区增大,由尺度间的能量传递和质点力对流体的做功来平衡。另一方面,横流速度波动的幅度单调地减小。研究发现,壁面附近横流速度波动的减弱是由于较低的压力-应变项传递了流向分量的能量,而外部区域的抑制是由于较弱的空间扩散、较强的尺度间能量传递和粒子反馈力的负功。在较高的颗粒质量载荷下,压力对流动膨胀的作用所反映的可压缩性效应得到缓解。
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来源期刊
CiteScore
7.30
自引率
10.50%
发文量
244
审稿时长
4 months
期刊介绍: The International Journal of Multiphase Flow publishes analytical, numerical and experimental articles of lasting interest. The scope of the journal includes all aspects of mass, momentum and energy exchange phenomena among different phases such as occur in disperse flows, gas–liquid and liquid–liquid flows, flows in porous media, boiling, granular flows and others. The journal publishes full papers, brief communications and conference announcements.
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