A computationally efficient 3D finite-volume scheme for violent liquid-gas sloshing

被引:27
作者
Oxtoby, O. F. [1 ]
Malan, A. G. [2 ]
Heyns, J. A. [1 ]
机构
[1] CSIR, Aeronaut Syst, ZA-0001 Pretoria, South Africa
[2] Univ Cape Town, Dept Mech Engn, South African Res Chair Ind CFD, ZA-7925 Cape Town, South Africa
关键词
finite volume method; free-surface modelling; volume of fluid method; sloshing; surface capturing; matrix free; parallel computing; VISCOUS INCOMPRESSIBLE FLOWS; ARTIFICIAL COMPRESSIBILITY; MATRIX-FREE; IMPROVED UNSTEADY; MESH METHOD; FLUID; FORMULATION; SIMULATION; IMPLICIT; ALGORITHM;
D O I
10.1002/fld.4055
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
We describe a semi-implicit volume-of-fluid free-surface-modelling methodology for flow problems involving violent free-surface motion. For efficient computation, a hybrid-unstructured edge-based vertex-centred finite volume discretisation is employed, while the solution methodology is entirely matrix free. Pressures are solved using a matrix-free preconditioned generalised minimum residual algorithm and explicit time-stepping is employed for the momentum and interface-tracking equations. The high resolution artificial compressive (HiRAC) volume-of-fluid method is used for accurate capturing of the free surface in violent flow regimes while allowing natural applicability to hybrid-unstructured meshes. The code is parallelised for solution on distributed-memory architectures and evaluated against 2D and 3D benchmark problems. Good parallel scaling is demonstrated, with almost linear speed-up down to 6000 cells per core. Finally, the code is applied to an industrial-type problem involving resonant excitation of a fuel tank, and a comparison with experimental results is made in this violent sloshing regime. Copyright (C) 2015 John Wiley & Sons, Ltd.
引用
收藏
页码:306 / 321
页数:16
相关论文
共 45 条
[1]   A 2D+T VOF fully coupled formulation for the calculation of breaking free-surface flow [J].
Andrillon, Y ;
Alessandrini, B .
JOURNAL OF MARINE SCIENCE AND TECHNOLOGY, 2004, 8 (04) :159-168
[2]  
[Anonymous], TECHNICAL REPORT
[3]  
Blazek J., 2015, Computational fluid dynamics: principles and applications
[4]  
Brennan D., 2001, The numerical simulation of two-phase flows in settling tanks
[5]  
Crumpton P I., 1997, Numerical Methods in Laminar and Turbulent Flow, P561
[6]  
Dukler AE, 1989, EXPT FLUIDS
[7]  
Ferziger H.J., 1999, Computational Methods for Fluid Dynamics, V2nd
[8]   Dynamics of liquid-filled spacecraft [J].
Gerrits, J ;
Veldman, AEP .
JOURNAL OF ENGINEERING MATHEMATICS, 2003, 45 (01) :21-38
[9]   NUMERICAL CALCULATION OF TIME-DEPENDENT VISCOUS INCOMPRESSIBLE FLOW OF FLUID WITH FREE SURFACE [J].
HARLOW, FH ;
WELCH, JE .
PHYSICS OF FLUIDS, 1965, 8 (12) :2182-&
[10]   Development of a compressive surface capturing formulation for modelling free-surface flow by using the volume-of-fluid approach [J].
Heyns, J. A. ;
Malan, A. G. ;
Harms, T. M. ;
Oxtoby, O. F. .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2013, 71 (06) :788-804