Direct numerical simulation of supersonic turbulent flows over rough surfaces

被引:19
|
作者
Modesti, Davide [1 ]
Sathyanarayana, Srikanth [2 ]
Salvadore, Francesco [3 ]
Bernardini, Matteo [2 ]
机构
[1] Delft Univ Technol, Fac Aerosp Engn, Kluyverweg 2, NL-2629 HS Delft, Netherlands
[2] Sapienza Univ Roma, Dipartimento Ingn Meccan & Aerospaziale, Via Eudossiana 18, I-00184 Rome, Italy
[3] Cineca, HPC Dept, Rome Off, Via Tizii 6 B, I-00185 Rome, Italy
关键词
supersonic flow; compressible turbulence; turbulent boundary layers; BOUNDARY-LAYERS; SKIN-FRICTION; HEAT-TRANSFER; REYNOLDS; DRAG; DNS;
D O I
10.1017/jfm.2022.393
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
We perform direct numerical simulation of supersonic turbulent channel flow over cubical roughness elements, spanning bulk Mach numbers M-b = 0.3-4, both in the transitional and fully rough regime. We propose a novel definition of roughness Reynolds number which is able to account for the viscosity variations at the roughness crest and should be used to compare rough-wall flows across different Mach numbers. As in the incompressible flow regime, the mean velocity profile shows a downward shift with respect to the baseline smooth wall cases, however, the magnitude of this velocity deficit is largely affected by the Mach number. Compressibility transformations are able to account for this effect, and data show a very good agreement with the incompressible fully rough asymptote, when the relevant roughness Reynolds number is used. Velocity statistics present outer layer similarity with the equivalent smooth wall cases, however, this does not hold for the thermal field, which is substantially affected by the roughness, even in the channel core. We show that this is a direct consequence of the quadratic temperature-velocity relation which is also valid for rough walls. Analysis of the heat transfer shows that the relative drag increase is always larger than the relative heat transfer enhancement, however, increasing the Mach number brings data closer to the Reynolds analogy line due to the rising relevance of the aerodynamic heating.
引用
收藏
页数:25
相关论文
共 50 条
  • [31] Scaling of the roughness effects in turbulent flows over systematically-varied irregular rough surfaces
    Kuwata, Y.
    Yamamoto, Y.
    Tabata, S.
    Suga, K.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2023, 101
  • [32] Numerical simulation of gap effect in supersonic flows
    Song Mo
    Haiming Huang
    Guo Huang
    Xiaoliang Xu
    Zimao Zhang
    Theoretical & Applied Mechanics Letters, 2014, 4 (04) : 71 - 75
  • [33] Comparisons of temperature structures with turbulent structures in thermally stratified channel flows by direct numerical simulation
    Feng, Shengjun
    Liu, Hongyou
    Liu, Haokun
    Zheng, Xiaojing
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2024, 105
  • [34] Numerical simulation of gap effect in supersonic flows
    Mo, Song
    Huang, Haiming
    Huang, Guo
    Xu, Xiaoliang
    Zhang, Zimao
    THEORETICAL AND APPLIED MECHANICS LETTERS, 2014, 4 (04)
  • [35] Direct numerical simulations of high-enthalpy supersonic turbulent channel flows including finite-rate reactions
    Chen, Xiao-Ping
    Yang, Yu-Ting
    Zhao, Shuo
    PHYSICS OF FLUIDS, 2024, 36 (04)
  • [36] Direct numerical simulation of stably and unstably stratified turbulent open channel flows
    Y. -H. Dong
    X. -Y. Lu
    Acta Mechanica, 2005, 177 : 115 - 136
  • [37] Direct numerical simulation of turbulent flows in a vertical rotating open-channel
    Li, BY
    Liu, NS
    Lu, XY
    MODERN PHYSICS LETTERS B, 2005, 19 (28-29): : 1443 - 1446
  • [38] Numerical Study of Supersonic Cavity Flows with Different Turbulent Models
    Liu, Hongpeng
    Zou, Shufan
    Shi, Fangcheng
    Wang, Shengye
    AEROSPACE, 2024, 11 (12)
  • [39] Effects of steepness on turbulent heat transfer over sinusoidal rough surfaces
    Kuwata, Y.
    Yagasaki, W.
    Suga, K.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2024, 109
  • [40] A robust, colocated, implicit algorithm for direct numerical simulation of compressible, turbulent flows
    Hou, YC
    Mahesh, K
    JOURNAL OF COMPUTATIONAL PHYSICS, 2005, 205 (01) : 205 - 221