Reynolds and Mach number effects in compressible turbulent channel flow

被引:137
|
作者
Modesti, Davide [1 ]
Pirozzoli, Sergio [1 ]
机构
[1] Univ Roma La Sapienza, Dipartimento Ingn Meccan & Aerosp, Via Eudossiana 18, I-00184 Rome, Italy
关键词
Compressible flow; Wall turbulence; Direct numerical simulation; DIRECT NUMERICAL-SIMULATION; BOUNDARY-LAYERS; HEAT-TRANSFER; PART; STATISTICS;
D O I
10.1016/j.ijheatfluidflow.2016.01.007
中图分类号
O414.1 [热力学];
学科分类号
摘要
The effect of Reynolds and Mach number variation in compressible isothermal channel flow is investigated through a series of direct numerical simulations (DNS), at bulk Mach number M-b = 1.5,3 and bulk Reynolds number up to Re-b = 34000, which is sufficient to sense sizeable high-Reynolds-number effects not reached before in this type of flow. Dedicated incompressible DNS are also performed at precisely matching Reynolds number, to directly gauge the performance of compressibility transformations for the mean velocity profiles and Reynolds stresses. As in previous studies, we find inaccuracy of the classical van Driest transformation to remove effects of variable density and viscosity, especially at low Reynolds number. On the other hand, almost perfect matching of incompressible mean velocity and Reynolds stress distributions is recovered throughout the wall layer by using a recently introduced transformation (Trettel and Larsson, 2014,2016), the only remaining effect of compressibility being the increase of the streamwise turbulence intensity peak with the Mach number. Temperature/velocity relations are scrutinized, with the main finding that a recent relation by Zhang et al. (2014), which explicitly accounts for finite wall heat flux, is more accurate than the classical Walz relation. The size of the typical turbulent eddies is studied through spanwise spectral densities of the velocity field, which support validity of a scaling based on the local mean shear and the local friction velocity, with the main conclusion that the actual size of the eddies does not vary with the Mach number, at a fixed outer wall distance. (C) 2016 Elsevier Inc. All rights reserved.
引用
收藏
页码:33 / 49
页数:17
相关论文
共 50 条
  • [41] Effects of finite-size neutrally buoyant particles on the turbulent channel flow at a Reynolds number of 395
    Zhaosheng Yu
    Chenlin Zhu
    Yu Wang
    Xueming Shao
    Applied Mathematics and Mechanics, 2019, 40 : 293 - 304
  • [42] Effect of geometry and Reynolds number on the turbulent separated flow behind a bulge in a channel
    Mollicone, J. -P.
    Battista, F.
    Gualtieri, P.
    Casciola, C. M.
    JOURNAL OF FLUID MECHANICS, 2017, 823 : 100 - 133
  • [43] PIV Experiment on the Turbulent Stripe in Poiseuille Channel Flow at the Transitional Reynolds Number
    Wu, X.
    Aida, H.
    Washio, N.
    Tsukahara, T.
    Kawaguchi, Y.
    Yu, B.
    RECENT PROGRESSES IN FLUID DYNAMICS RESEARCH - PROCEEDINGS OF THE SIXTH INTERNATIONAL CONFERENCE ON FLUID MECHANICS, 2011, 1376
  • [44] Evolution of vortices in wall vicinity of turbulent channel flow at low Reynolds number
    Iida, Oaki
    JOURNAL OF FLUID SCIENCE AND TECHNOLOGY, 2014, 9 (06):
  • [45] Reynolds number effect on the Lagrangian evolution of hairpin vortices in turbulent channel flow
    Majd, Behnam Kazemi
    Pouransari, Zeinab
    JOURNAL OF TURBULENCE, 2024, 25 (07): : 207 - 224
  • [46] DNS of viscoelastic turbulent channel flow with rectangular orifice at low Reynolds number
    Tsukahara, Takahiro
    Kawase, Tomohiro
    Kawaguchi, Yasuo
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2011, 32 (03) : 529 - 538
  • [47] TURBULENT SIMULATION OF OPEN-CHANNEL FLOW AT LOW-REYNOLDS-NUMBER
    THOMAS, TG
    WILLIAMS, JJR
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1995, 38 (02) : 259 - 266
  • [48] Large scale dynamics in a turbulent compressible rotor/stator cavity flow at high Reynolds number
    Lachize, C.
    Verhille, G.
    Le Gal, P.
    FLUID DYNAMICS RESEARCH, 2016, 48 (04)
  • [49] Conservative compressible one-dimensional turbulence formulation and application to high-Reynolds-number compressible turbulent channel flows
    Chen, Chongpei
    Liang, Jianhan
    Gao, Tianyun
    Wu, Xiaoshuai
    Zhao, Wandong
    Zhang, Lin
    PHYSICS OF FLUIDS, 2022, 34 (06)
  • [50] Low reynolds number effects in a mach 3 shock/turbulent-boundary-layer interaction
    Ringuette, M.
    Wu, M.
    Martín, M.P.
    AIAA Journal, 2008, 46 (07): : 1884 - 1887