Turbulent flow simulations of the common research model using immersed boundary method

被引:0
|
作者
机构
[1] Tamaki, Yoshiharu
[2] Imamura, Taro
来源
| 1600年 / AIAA International, 12700 Sunrise Valley Drive, Suite 200Reston, VA, Virginia, Virginia 20191-5807, United States卷 / 56期
基金
日本学术振兴会;
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Transonic turbulent flows around the NASA Common Research Model are simulated to investigate the capability of the Cartesian-grid-based flow solver UTCart in three-dimensional high-Reynolds-number flow simulations. UTC art consists of anautomatic Cartesian grid generator based on an octree structure and a compressible flow solver that uses an immersed boundary method with a turbulent wall function for the wall boundary condition. Using the UTCart grid generator, the medium grid (approximately 50 million cells) around the NASA Common Research Model is generated in 43 min. For the prediction of the drag coefficient at the cruise condition, the difference between the medium-grid result and the grid-converged value is 24 drag counts (8%). For the fine-grid (approximately 97 million cells) result, the difference reduces to 15 drag counts (5%). Although the drag coefficient is slightly overestimated, the componentwise aerodynamic coefficient shows a consistent trend of grid convergence. Furthermore, the qualitative flow features, including flow separation at high angles of attack, agree well with the experimental data and the computational results on conventional body-fitted grids. Copyright © 2018 by Yoshiharu Tamaki, Motoshi Harada, and Taro Imamura.
引用
收藏
相关论文
共 50 条
  • [31] Rotorcraft fuselage and ship airwakes simulations using an immersed boundary method
    Park, H. S.
    Linton, D.
    Thornber, B.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2022, 93
  • [32] Using the Octree Immersed Boundary Method for urban wind CFD simulations
    Mitkov, R.
    Pantusheva, M.
    Naserentin, V
    Hristov, P. O.
    Wastberg, D.
    Hunger, F.
    Mark, A.
    Petrova-Antonova, D.
    Edelvik, F.
    Logg, A.
    IFAC PAPERSONLINE, 2022, 55 (11): : 179 - 184
  • [33] HIGH REYNOLDS NUMBER AIRFOIL SIMULATIONS USING THE IMMERSED BOUNDARY METHOD
    Johnson, James P.
    Laccarino, Gianluca
    Chen, Kuo-Huey
    Khalighi, Bahram
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER MEETING, 2012, VOL 1, PTS A AND B, SYMPOSIA, 2012, : 1359 - 1368
  • [34] Simulations of the whirling instability by the immersed boundary method
    Lim, S
    Peskin, CS
    SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2004, 25 (06): : 2066 - 2083
  • [35] A COMPUTATIONAL MODEL OF THE COCHLEA USING THE IMMERSED BOUNDARY METHOD
    BEYER, RP
    JOURNAL OF COMPUTATIONAL PHYSICS, 1992, 98 (01) : 145 - 162
  • [36] Level set-based topology optimization for two dimensional turbulent flow using an immersed boundary method
    Kubo, Seiji
    Koguchi, Atsushi
    Yaji, Kentaro
    Yamada, Takayuki
    Izui, Kazuhiro
    Nishiwaki, Shinji
    JOURNAL OF COMPUTATIONAL PHYSICS, 2021, 446
  • [37] Entropic lattice Boltzmann method for turbulent flow simulations: Boundary conditions
    Chikatamarla, S. S.
    Karlin, I. V.
    PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2013, 392 (09) : 1925 - 1930
  • [38] An Immersed Boundary Method Enabling Large-Eddy Simulations of Flow over Complex Terrain in the WRF Model
    Lundquist, Katherine A.
    Chow, Fotini Katopodes
    Lundquist, Julie K.
    MONTHLY WEATHER REVIEW, 2012, 140 (12) : 3936 - 3955
  • [39] Vesicle electrohydrodynamic simulations by coupling immersed boundary and immersed interface method
    Hu, Wei-Fan
    Lai, Ming-Chih
    Seol, Yunchang
    Young, Yuan-Nan
    JOURNAL OF COMPUTATIONAL PHYSICS, 2016, 317 : 66 - 81
  • [40] A Python']Python-based flow solver for numerical simulations using an immersed boundary method on single GPUs
    Guerrero-Hurtado, M.
    Catalan, J. M.
    Moriche, M.
    Gonzalo, A.
    Flores, O.
    COMPUTERS & FLUIDS, 2025, 288