Lateral Boundary Conditions for Complex Terrain Wind Simulations with Oblique Inflow Direction

被引:0
作者
Ting-Hsuan Ma
Inanc Senocak
机构
[1] University of Pittsburgh,
来源
Boundary-Layer Meteorology | 2023年 / 187卷
关键词
Box-perturbation method; Complex terrain; Immersed boundary method; Inflow; Outflow;
D O I
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学科分类号
摘要
Large-eddy simulation is a formidable method for predicting winds around complex terrain, but predictions can be highly dependent on the lateral boundary conditions used in the computations. When periodic boundary conditions are not an option because of terrain complexity, inflow and outflow boundary conditions must be adopted. A common practice in micro-scale wind simulations with incompressible flow solvers is to orient the terrain such that the incoming wind is always orthogonal to the inflow face and impose constant pressure outlet boundary conditions on a flat terrain far away from the region of interest. However, terrain reorientation becomes computationally expensive to ingest meandering winds as inflow. In the present work, we demonstrate shortcomings of this existing practice when oblique inflow angle is imposed at the inlet faces. To address these shortcomings, we pursue a Neumann-type pressure boundary condition at the outflow boundaries with a global mass conservation correction step on the momentum field. Additionally, we revise the so-called box perturbation method to generate evenly distributed turbulence at inlet faces with oblique inflow direction. We use the canonical channel flow, the Perdigão terrain, and the Askervein hill examples to demonstrate the effectiveness of our proposed fixes. The major benefits of our proposed approach are savings in computational cost due to the ability to use a smaller simulation domain and elimination of laborious terrain reorientation and tapering, and mesh generation steps for every new wind direction. We expect our approach to be beneficial, particularly, for model-chain approaches for arbitrarily complex terrain simulations.
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页码:567 / 590
页数:23
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  • [1] Abdallah S(1988)Dirichlet and Neumann boundary conditions for the pressure Poisson equation of incompressible flow Int J Numer Methods Fluids 8 1029-1036
  • [2] Dreyer J(1993)The role of mass conservation in pressure-based algorithms Numer Heat Transf B Fundam 24 415-429
  • [3] Blosch E(1968)Numerical solution of the Navier–Stokes equations Math Comput 22 745-9
  • [4] Shyy W(2017)Wind energy evaluation for a highly complex terrain using computational fluid dynamics (CFD) Renew Energy 101 1-194
  • [5] Smith R(2013)Flow over hills: a large-eddy simulation of the Bolund case Boundary-Layer Meteorol 148 177-105
  • [6] Chorin AJ(2014)A robust and accurate outflow boundary condition for incompressible flow simulations on severely-truncated unbounded domains J Comput Phys 261 83-819
  • [7] Dhunny AZ(2019)The Perdigão: peering into microscale details of mountain winds Bull Am Meteorol Soc 100 799-1145
  • [8] Lollchund MR(1987)On pressure boundary conditions for the incompressible Navier–Stokes equations Int J Numer Methods Fluids 7 1111-20
  • [9] Rughooputh SDDV(2013)Multi-level parallelism for incompressible flow computations on GPU clusters Parallel Comput 39 1-17
  • [10] Diebold M(2014)Large eddy simulation of wind farm aerodynamics: a review J Wind Eng Ind Aerod 133 1-385