Direct Numerical Simulation of High-Enthalpy Turbulent Boundary-Layer Flow with Light Gas Injections

被引:2
|
作者
Zhao, Rui [1 ]
Zuo, Zhengxuan [1 ]
Wang, Xiaoyong [2 ]
Yuan, Wu [2 ]
Wen, Chihyung [3 ]
机构
[1] Beijing Inst Technol, Sch Aerospace Engn, Beijing 100081, Peoples R China
[2] Chinese Acad Sci, State Key Lab High Temperature Gas Dynam, Inst Mech, Beijing 100190, Peoples R China
[3] Hong Kong Polytech Univ, Kowloon, Dept Aeronaut & Aviat Engn, Hong Kong, Peoples R China
基金
中国国家自然科学基金;
关键词
Boundary Layer Flow; Ablation; Aerothermochemistry; Drag Reduction; Direct Numerical Simulation; Turbulent Boundary Layer;
D O I
10.2514/1.J062942
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Two light gases (He and H2) are, respectively, introduced upstream of a high-enthalpy turbulent flat-plate flow with a boundary-layer edge Mach number of Ma delta=2.25 and temperature of T delta=1800 K. The flow condition refers to the after-shock wave flow on a blunt-body hypersonic vehicle (Duan and Martin, AIAA Journal, Vol. 49, No. 1, 2011, pp. 172-184). Direct numerical simulation results show that the injection of these light gases has little effect on the mean velocity profiles but significantly reduces the near-wall density and skin friction. The separation and fragmentation of near-wall vortical structures are restrained, and the Reynolds shear stress decreases. The injection of inert He inhibits the dissociation reaction of O2 and weakens the chemical nonequilibrium effect, resulting in enhanced mean and fluctuating temperatures. The injection of active H2 promotes the reaction between H2 and O2, which increases the mean temperature but inhibits its fluctuation. After decomposing the mean skin friction into physics-informed contributions, both injections largely reduce the turbulent kinetic energy production term Cf,T and the spatial growth term of the flow, Cf,G, through lowering the near-wall density and reducing vortices.
引用
收藏
页码:956 / 965
页数:10
相关论文
共 50 条
  • [31] Numerical study of light scattering by a boundary-layer flow
    Bogucki, DJ
    Domaradzki, JA
    APPLIED OPTICS, 2005, 44 (25) : 5286 - 5291
  • [32] Direct numerical simulation of premixed flame boundary layer flashback in turbulent channel flow
    Gruber, A.
    Chen, J. H.
    Valiev, D.
    Law, C. K.
    JOURNAL OF FLUID MECHANICS, 2012, 709 : 516 - 542
  • [33] Direct numerical simulation of turbulent boundary layer with heat transfer
    Zhao, Hui
    Wei, Anyang
    Luo, Kun
    Fan, Jianren
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 99 : 10 - 19
  • [34] Investigation of a turbulent separating boundary layer by direct numerical simulation
    Manhart, M
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING '02, 2003, : 285 - 298
  • [35] Numerical Simulation of High-Enthalpy Flows at Thermochemical Equilibrium
    Diwakar, A.
    Ramasahayam, V. K. V.
    Bodi, K.
    JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 2020, 34 (02) : 255 - 264
  • [36] NUMERICAL SIMULATIONS OF TURBULENT SPOTS IN PLANE POISEUILLE AND BOUNDARY-LAYER FLOW
    HENNINGSON, D
    SPALART, P
    KIM, J
    PHYSICS OF FLUIDS, 1987, 30 (10) : 2914 - 2917
  • [37] TURBULENT BOUNDARY-LAYER IN HIGHLY TURBULENT EXTERNAL FLOW
    PICHAL, M
    ZEITSCHRIFT FUR ANGEWANDTE MATHEMATIK UND MECHANIK, 1972, 52 (10): : T407 - T416
  • [38] Direct numerical simulation of high-temperature turbulent boundary layer with chemical nonequilibrium
    Liu P.
    Yuan X.
    Sun D.
    Fu Y.
    Li C.
    Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica, 2022, 43 (01):
  • [39] Numerical simulation of a turbulent boundary layer at the gas/liquid interface
    Goltsman, A. E.
    Saushin, I. I.
    4TH ALL-RUSSIAN SCIENTIFIC CONFERENCE THERMOPHYSICS AND PHYSICAL HYDRODYNAMICS WITH THE SCHOOL FOR YOUNG SCIENTISTS, 2019, 1359
  • [40] Wall heat transfer in high-enthalpy hypersonic turbulent boundary layers
    Li, JunYang
    Yu, Ming
    Sun, Dong
    Liu, PengXin
    Yuan, XianXu
    PHYSICS OF FLUIDS, 2022, 34 (08)