Surface‐sampled simulations of turbulent flow at high Reynolds number
Summary A new approach to turbulence simulation, based on a combination of large eddy simulation (LES) for the whole flow and an array of non–space‐filling quasi‐direct numerical simulations (QDNS), which sample the response of near‐wall turbulence to large‐scale forcing, is proposed and evaluated....
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Veröffentlicht in: | International journal for numerical methods in fluids 2017-11, Vol.85 (9), p.525-537 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Summary
A new approach to turbulence simulation, based on a combination of large eddy simulation (LES) for the whole flow and an array of non–space‐filling quasi‐direct numerical simulations (QDNS), which sample the response of near‐wall turbulence to large‐scale forcing, is proposed and evaluated. The technique overcomes some of the cost limitations of turbulence simulation, since the main flow is treated with a coarse‐grid LES, with the equivalent of wall functions supplied by the near‐wall sampled QDNS. Two cases are tested, at friction Reynolds number Reτ=4200 and 20000. The total grid point count for the first case is less than half a million and less than 2 million for the second case, with the calculations only requiring a desktop computer. A good agreement with published direct numerical simulation (DNS) is found at Reτ=4200, both in the mean velocity profile and the streamwise velocity fluctuation statistics, which correctly show a substantial increase in near‐wall turbulence levels due to a modulation of near‐wall streaks by large‐scale structures. The trend continues at Reτ=20000, in agreement with experiment, which represents one of the major achievements of the new approach. A number of detailed aspects of the model, including numerical resolution, LES‐QDNS coupling strategy and subgrid model are explored. A low level of grid sensitivity is demonstrated for both the QDNS and LES aspects. Since the method does not assume a law of the wall, it can in principle be applied to flows that are out of equilibrium.
A new approach to turbulence simulation through the coupling of a large eddy simulation (simulating the whole flow) with an array of non–space‐filling quasi‐direct numerical simulations, which sample the response of near‐wall turbulence to large‐scale forcing, is presented. The technique overcomes some of the cost limitations of turbulence simulation. Two channel flow cases are tested, at friction Reynolds number 4200 and 20 000, with the first case agreeing well with published direct numerical simulation data. |
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ISSN: | 0271-2091 1097-0363 |
DOI: | 10.1002/fld.4395 |