Implementation Methods of Wall Functions in Cell-vertex Numerical Solvers

被引:25
作者
Jaegle, Felix [1 ]
Cabrit, Olivier [1 ]
Mendez, Simon [1 ]
Poinsot, Thierry [2 ]
机构
[1] CERFACS, F-31057 Toulouse 01, France
[2] Inst Mecan Fluides Toulouse, CNRS, INPT, UPS, F-31400 Toulouse, France
关键词
Wall function; Implementation; Cell-vertex; Complex geometries; LARGE-EDDY SIMULATIONS; BOUNDARY-CONDITIONS; MODELS; FLOWS;
D O I
10.1007/s10494-010-9276-1
中图分类号
O414.1 [热力学];
学科分类号
摘要
Two different implementation techniques of wall functions for cell-vertex based numerical methods are described and evaluated. The underlying wall model is based on the classical theory of the turbulent boundary layer. The present work focuses on the integration of this wall-model in a cell-vertex solver for large eddy simulations and its implications when applied to complex geometries, in particular domains with sudden expansions (more generally in presence of sharp edges). At corner nodes, the conjugation of law of the wall models using slip velocities on walls and of the cell-vertex approach leads to difficulties. Therefore, an alternative implementation of wall functions is introduced, which uses a no-slip condition at the wall. Both implementation methods are compared in a turbulent periodic channel flow, representing a typical validation case. The case of an injector for aero-engines is presented as an example for an industrial-scale application with a complex geometry.
引用
收藏
页码:245 / 272
页数:28
相关论文
共 36 条
[1]  
Anderson D.A., 1997, Computational Fluid Mechanics and Heat Transfer, V2nd ed.
[2]  
[Anonymous], ADV DNS LES
[3]  
Bagget J.S., 1997, Resolution requirements in large-eddy simulations of shear flows. Annual Research Briefs, P51
[4]   Development of wall models for LES of separated flows using statistical evaluations [J].
Breuer, M. ;
Kniazev, B. ;
Abel, M. .
COMPUTERS & FLUIDS, 2007, 36 (05) :817-837
[5]   Direct simulations for wall modeling of multicomponent reacting compressible turbulent flows [J].
Cabrit, Olivier ;
Nicoud, Franck .
PHYSICS OF FLUIDS, 2009, 21 (05)
[6]   A NUMERICAL STUDY OF 3 DIMENSIONAL TURBULENT CHANNEL FLOW AT LARGE REYNOLDS NUMBERS [J].
DEARDORFF, JW .
JOURNAL OF FLUID MECHANICS, 1970, 41 :453-+
[7]   MEASUREMENTS IN TURBULENT SWIRLING FLOW THROUGH AN ABRUPT AXISYMMETRIC EXPANSION [J].
DELLENBACK, PA ;
METZGER, DE ;
NEITZEL, GP .
AIAA JOURNAL, 1988, 26 (06) :669-681
[8]  
Grotzbach G., 1987, Encycl. Fluid Mech., V6, P1337
[9]  
Hirsch C., 1988, NUMERICAL COMPUTATIO
[10]  
Hoffman G., 1995, ADV TURBULENCE, P222