A comparison of different numerical schemes in spherical Couette flow simulation

被引:2
作者
Abbas, Suhail [1 ,2 ]
Shah, Abdullah [3 ]
Hussain, Zahid [2 ]
Hussain, Shahid [2 ]
机构
[1] Karakoram Int Univ, Ghizer Campus, Ghizer 15200, Pakistan
[2] Karakoram Int Univ, Dept Math Sci, Gilgit 15100, Pakistan
[3] COMSATS Univ Islamabad, Dept Math, Pk Rd, Islamabad 45550, Pakistan
关键词
CONCENTRIC ROTATING SPHERES; NAVIER-STOKES EQUATIONS; VISCOUS INCOMPRESSIBLE-FLOW; TAYLOR-GORTLER VORTICES; TRANSITION; STEADY; FLUID;
D O I
10.1063/5.0032553
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We compare the performance of line Gauss-Seidel (LGS), point Gauss-Seidel (PGS), and alternating direction implicit (ADI) linear solvers used in the artificial compressibility method for the numerical solution of the three-dimensional incompressible Navier-Stokes equations. Spatial discretization is carried out using a fifth-order WENO scheme for the convective terms and a second-order central difference scheme for the viscous terms. A comparison is made by simulating the spherical Couette flow problem, with only the inner sphere rotating and the outer one fixed. OpenMP is used for numerical computation in parallel for the three schemes. First, we compare the numerical efficiency of the solvers by computing 0-vortex flow for a medium-gap sigma)" open="(R2-R1R1=0.25. Second, we make a residual comparison for a steady-state flow calculation based on the CFL number and artificial compressibility factor. Finally, we compare the three solvers for unsteady flow computations based on the artificial compressibility factor. The results show that the LGS solver is more reliable than the PGS and the ADI solvers. To show the accuracy of the LGS scheme, we compute different flow modes for an intermediate-gap clearance ratio sigma)" open="(">R2-R1R1=0.14. The computed results have good agreement with the existing numerical results.
引用
收藏
页数:13
相关论文
共 50 条
[31]   Flow instabilities in the wide-gap spherical Couette system [J].
Wicht, Johannes .
JOURNAL OF FLUID MECHANICS, 2014, 738 :184-221
[32]   Existence regime of symmetric and asymmetric Taylor vortices in wide-gap spherical Couette flow [J].
Abbas, Suhail ;
Yuan, Li ;
Shah, Abdullah .
JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2018, 40 (03)
[33]   Direct numerical simulation of Taylor-Couette flow: Regime-dependent role of axial walls [J].
Xu, Fan ;
Zhao, Peng ;
Sun, Chao ;
He, Yurong ;
Wang, Junwu .
CHEMICAL ENGINEERING SCIENCE, 2022, 263
[34]   Experimental investigation of the return flow instability in magnetized spherical Couette flows [J].
Ogbonna, J. ;
Garcia, F. ;
Gundrum, T. ;
Seilmayer, M. ;
Stefani, F. .
PHYSICS OF FLUIDS, 2020, 32 (12)
[35]   Analytical solution of plane Couette flow in the transition regime and comparison with Direct Simulation Monte Carlo data [J].
Singh, Narendra ;
Gavasane, Abhimanyu ;
Agrawal, Amit .
COMPUTERS & FLUIDS, 2014, 97 :177-187
[36]   Numerical simulation of evolution pattern of vortices in Taylor-Couette flow with three-lobe multiwedge clearance [J].
Luo, Bi-tai ;
Zhang, Jing-yang ;
Cheng, Feng-na ;
Lyu, Yuan-wei .
PHYSICS OF FLUIDS, 2024, 36 (06)
[37]   Numerical study on the motion of two parallel spherical particles with different diameters in upward flow [J].
Sun, Xiwang ;
Lin, Zhe ;
Li, Linmin ;
Zhu, Zuchao .
PHYSICS OF FLUIDS, 2024, 36 (09)
[38]   Experimental observation of chaos-chaos intermittency types in spherical Couette flow [J].
Zhilenko, D. ;
Krivonosova, O. .
DOKLADY PHYSICS, 2014, 59 (01) :45-48
[39]   Numerical Simulation of Turbulent Pipe Flow Through an Abrupt Axisymmetric Constriction [J].
Nygard, F. ;
Andersson, H. I. .
FLOW TURBULENCE AND COMBUSTION, 2013, 91 (01) :1-18
[40]   CFD simulation of bubbly turbulent Tayor-Couette flow [J].
Gao, Xi ;
Kong, Bo ;
Vigil, R. Dennis .
CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2016, 24 (06) :719-727