Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow

Abstract Flow between rotating concentric cylinders, or the Taylor Couette flow, has been studied extensively because of its rich physics, ranging from axisymmetric steady laminar flow, to fully developed turbulent flow. In the present study, we advocate the use of this problem as a benchmark case f...

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Main Authors: Z. J. Wang, E. Jourdan
Format: Article
Language:English
Published: SpringerOpen 2021-06-01
Series:Advances in Aerodynamics
Subjects:
Online Access:https://doi.org/10.1186/s42774-021-00071-0
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spelling doaj-fcfffc21023742be9a829afe6dbcf0392021-06-27T11:25:02ZengSpringerOpenAdvances in Aerodynamics2524-69922021-06-013111810.1186/s42774-021-00071-0Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flowZ. J. Wang0E. Jourdan1Department of Aerospace Engineering, University of KansasDepartment of Aerospace Engineering, University of KansasAbstract Flow between rotating concentric cylinders, or the Taylor Couette flow, has been studied extensively because of its rich physics, ranging from axisymmetric steady laminar flow, to fully developed turbulent flow. In the present study, we advocate the use of this problem as a benchmark case for scale-resolving simulation, such as large eddy simulation (LES) and direct numerical simulation (DNS). The problem is attractive because of its simple geometry, simple boundary conditions, and complex physics involving wall-shear induced and centrifugal instability. Unlike the well-known fully developed channel flow, this problem has a curved wall boundary, and it is unnecessary to add a source term to the governing equations to sustain the fully developed turbulent flow. A p-refinement study for Re = 4000 is performed first to establish DNS data, including the time history of enstrophy, which can be used as an accuracy and resolution indicator to evaluate numerical methods, and is orders of magnitude faster than using the mean flow quantities and Reynolds stresses to evaluate solution quality. Finally, an hp-refinement study is performed to establish the relative accuracy and efficiency of high-order schemes of various accuracy.https://doi.org/10.1186/s42774-021-00071-0Large eddy simulationDirect numerical simulationHigh-order methodsNavier-StokesTaylor Couette flow
collection DOAJ
language English
format Article
sources DOAJ
author Z. J. Wang
E. Jourdan
spellingShingle Z. J. Wang
E. Jourdan
Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow
Advances in Aerodynamics
Large eddy simulation
Direct numerical simulation
High-order methods
Navier-Stokes
Taylor Couette flow
author_facet Z. J. Wang
E. Jourdan
author_sort Z. J. Wang
title Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow
title_short Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow
title_full Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow
title_fullStr Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow
title_full_unstemmed Benchmark for scale-resolving simulation with curved walls: the Taylor Couette flow
title_sort benchmark for scale-resolving simulation with curved walls: the taylor couette flow
publisher SpringerOpen
series Advances in Aerodynamics
issn 2524-6992
publishDate 2021-06-01
description Abstract Flow between rotating concentric cylinders, or the Taylor Couette flow, has been studied extensively because of its rich physics, ranging from axisymmetric steady laminar flow, to fully developed turbulent flow. In the present study, we advocate the use of this problem as a benchmark case for scale-resolving simulation, such as large eddy simulation (LES) and direct numerical simulation (DNS). The problem is attractive because of its simple geometry, simple boundary conditions, and complex physics involving wall-shear induced and centrifugal instability. Unlike the well-known fully developed channel flow, this problem has a curved wall boundary, and it is unnecessary to add a source term to the governing equations to sustain the fully developed turbulent flow. A p-refinement study for Re = 4000 is performed first to establish DNS data, including the time history of enstrophy, which can be used as an accuracy and resolution indicator to evaluate numerical methods, and is orders of magnitude faster than using the mean flow quantities and Reynolds stresses to evaluate solution quality. Finally, an hp-refinement study is performed to establish the relative accuracy and efficiency of high-order schemes of various accuracy.
topic Large eddy simulation
Direct numerical simulation
High-order methods
Navier-Stokes
Taylor Couette flow
url https://doi.org/10.1186/s42774-021-00071-0
work_keys_str_mv AT zjwang benchmarkforscaleresolvingsimulationwithcurvedwallsthetaylorcouetteflow
AT ejourdan benchmarkforscaleresolvingsimulationwithcurvedwallsthetaylorcouetteflow
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