Minimum-dissipation scalar transport model for large-eddy simulation of turbulent flows

被引:51
|
作者
Abkar, Mahdi [1 ]
Bae, Hyun J. [1 ]
Moin, Parviz [1 ]
机构
[1] Stanford Univ, Ctr Turbulence Res, Stanford, CA 94305 USA
来源
PHYSICAL REVIEW FLUIDS | 2016年 / 1卷 / 04期
基金
瑞士国家科学基金会;
关键词
DEPENDENT DYNAMIC-MODEL; BOUNDARY-LAYER;
D O I
10.1103/PhysRevFluids.1.041701
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Minimum-dissipation models are a simple alternative to the Smagorinsky-type approaches to parametrize the subfilter turbulent fluxes in large-eddy simulation. A recently derived model of this type for subfilter stress tensor is the anisotropic minimum-dissipation (AMD) model [Rozema et al., Phys. Fluids 27, 085107 (2015)], which has many desirable properties. It is more cost effective than the dynamic Smagorinsky model, it appropriately switches off in laminar and transitional flows, and it is consistent with the exact subfilter stress tensor on both isotropic and anisotropic grids. In this study, an extension of this approach to modeling the subfilter scalar flux is proposed. The performance of the AMD model is tested in the simulation of a high-Reynolds-number rough-wall boundary-layer flow with a constant and uniform surface scalar flux. The simulation results obtained from the AMD model show good agreement with well-established empirical correlations and theoretical predictions of the resolved flow statistics. In particular, the AMD model is capable of accurately predicting the expected surface-layer similarity profiles and power spectra for both velocity and scalar concentration.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Three problems in the large-eddy simulation of complex turbulent flows
    Mahesh, Krishnan
    Hou, Yucheng
    Babu, Pradeep
    Lecture Notes in Computational Science and Engineering, 2007, 56 : 99 - 115
  • [22] Large-eddy simulation of spatially developing turbulent wake flows
    Department of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, WV, United States
    J Ship Res, 2006, 3 (208-221):
  • [23] Large-eddy simulation of reacting turbulent flows in complex geometries
    Mahesh, K.
    Constantinescu, G.
    Apte, S.
    Iaccarino, G.
    Ham, F.
    Moin, P.
    Journal of Applied Mechanics, Transactions ASME, 2006, 73 (03): : 374 - 381
  • [24] A dynamic global subgrid-scale model for large eddy simulation of scalar transport in complex turbulent flows
    Lee, Jungil
    Choi, Haecheon
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2012, 26 (12) : 3803 - 3810
  • [25] A dynamic global subgrid-scale model for large eddy simulation of scalar transport in complex turbulent flows
    Jungil Lee
    Haecheon Choi
    Journal of Mechanical Science and Technology, 2012, 26 : 3803 - 3810
  • [26] DISSIPATION OF TURBULENCE ENERGY AND SCALAR VARIANCE IN LARGE EDDY SIMULATIONS OF TURBULENT FLOWS
    LEONARD, A
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1974, 55 (03): : 137 - 138
  • [27] Subgrid-scale helicity equation model for large-eddy simulation of turbulent flows
    Qi, Han
    Li, Xinliang
    Yu, Changping
    PHYSICS OF FLUIDS, 2021, 33 (03)
  • [28] A Minimum-Relaxation Model for Large-Eddy Simulation
    Verstappen, Roel
    TURBULENCE AND INTERACTIONS (TI 2015), 2018, 135 : 255 - 261
  • [29] TURBULENT TRANSPORT FROM AN ARCTIC LEAD - A LARGE-EDDY SIMULATION
    GLENDENING, JW
    BURK, SD
    BOUNDARY-LAYER METEOROLOGY, 1992, 59 (04) : 315 - 339
  • [30] A modulated gradient model for scalar transport in large-eddy simulation of the atmospheric boundary layer
    Lu, Hao
    Porte-Agel, Fernando
    PHYSICS OF FLUIDS, 2013, 25 (01)