Direct numerical simulations of shocklet-containing turbulent channel counter-flows
File(s)TSFP_12_Full_Paper_Counter_Flow_arXiv.pdf (5.93 MB)
Published version
Author(s)
Hamzehloo, Arash
Lusher, David J
Laizet, Sylvain
Sandham, Neil D
Type
Conference Paper
Abstract
Counter-flow or counter-current configurations can maintain high turbulence intensities and exhibit a significant level of mixing. We have previously introduced a wall-bounded counter-flow turbulent channel configuration (Physical Review Fluids, 6(9), p.094603.) as an efficient framework to study compressibility effects on turbulence. Here, we extend our previous direct numerical simulation study to a relatively higher Mach number (M = 0.7) to investigate strong compressibility effects (also by reducing the Prandtl number from Pr = 0.7 to 0.2), and the formation and evolution of unsteady
shocklet structures. It is found that the configuration is able to produce highly turbulent flows with embedded shocklets and significant asymmetry in probability density functions of dilatation. A peak turbulent Mach number close to unity is obtained, for which the contribution of the dilatational dissipation to total dissipation is nevertheless found to be limited to 6%.
shocklet structures. It is found that the configuration is able to produce highly turbulent flows with embedded shocklets and significant asymmetry in probability density functions of dilatation. A peak turbulent Mach number close to unity is obtained, for which the contribution of the dilatational dissipation to total dissipation is nevertheless found to be limited to 6%.
Date Issued
2022-07-22
Date Acceptance
2022-02-28
Citation
Proceedings of TSFP-12, 2022, pp.1-6
Publisher
International Symposium series on Turbulence and Shear Flow Phenomena
Start Page
1
End Page
6
Journal / Book Title
Proceedings of TSFP-12
Copyright Statement
© 2022 TSFP.
Source
12th International Symposium on Turbulence and Shear Flow Phenomena (TSFP12)
Publication Status
Published
Start Date
2022-07-19
Finish Date
2022-07-22
Coverage Spatial
Osaka, Japan (virtual)