Direct Numerical Simulation of an Accelerating Channel Flow

被引:30
|
作者
Seddighi, M. [1 ]
He, S. [1 ]
Vardy, A. E. [2 ]
Orlandi, P. [3 ]
机构
[1] Univ Sheffield, Dept Mech Engn, Sheffield S1 3JD, S Yorkshire, England
[2] Univ Dundee, Div Civil Engn, Dundee DD1 4HN, Scotland
[3] Univ Roma La Sapienza, Dipartimento Meccan & Aeronaut, Rome, Italy
基金
英国工程与自然科学研究理事会;
关键词
Unsteady; Turbulence; Transition; Channel flow; BOUNDARY-LAYER-TRANSITION; FAVORABLE PRESSURE-GRADIENT; TURBULENT-FLOW; PART; STREAMWISE STREAKS; REYNOLDS-NUMBER; WALL FRICTION; HEAT-TRANSFER; WAVES; STABILITY;
D O I
10.1007/s10494-013-9519-z
中图分类号
O414.1 [热力学];
学科分类号
摘要
Direct Numerical Simulation of a linearly accelerating channel flow starting from an initially statistically steady turbulent flow has been performed. It is shown that the response of the accelerating flow is fundamentally the same as that of the step-change transient flow described in He and Seddighi (J Fluid Mech 715:60-102, 2013). The flow structure again behaves like a boundary layer bypass transition undergoing three distinct phases, namely, (i) initially (pre-transition), the flow is laminar-like and the pre-existing turbulent structures are modulated resulting in elongated streaks leading to a strong and continuous increase in the streamwise fluctuating velocity but little changes in the other two components; (ii) it then undergoes transition when isolated turbulent spots are generated which spread and merge with each other, and (iii) they eventually cover the entire surface of the wall when the flow is fully turbulent. The similarity between the turbulence responses in the two flows is significant noting the contrasting features of the two types of mean flow unsteadiness: in the step-change flow, a sharp boundary layer is resulted in nearly instantly on the wall which closely resembles the spatially developing boundary layer, whereas the linear flow acceleration causes a continuing change of velocity gradient adjacent to the wall which propagates into the flow field with time, resulting in a gradually-developing boundary layer. There are, however, quantitative differences in the detailed behavior of the two flows and especially the transition is much delayed in the accelerating flow. It is also shown that the late pre-transition and early transition stages in both flows are characterised by significantly increased inwards sweep events in the wall region and ejection events in the outer layer. The flatness of the wall-normal velocity increases markedly near the wall around the time of onset of transition as a consequence of the huge intermittency of the velocity fluctuations. That is, there are long periods of quiescent flow coupled with occasional turbulent bursts.
引用
收藏
页码:473 / 502
页数:30
相关论文
共 50 条
  • [21] Direct Numerical Simulation of Stable Channel Flow at Large Stability
    F. T. M. Nieuwstadt
    Boundary-Layer Meteorology, 2005, 116 : 277 - 299
  • [22] Direct numerical simulation of curly fibers in turbulent channel flow
    Soltani, M
    Ahmadi, G
    AEROSOL SCIENCE AND TECHNOLOGY, 2000, 33 (05) : 392 - 418
  • [23] Direct numerical simulation of sharkskin denticles in turbulent channel flow
    Boomsma, A.
    Sotiropoulos, F.
    PHYSICS OF FLUIDS, 2016, 28 (03)
  • [24] Direct Numerical Simulation of Fully Developed Turbulent Channel Flow
    Du, Dongxing
    Li, Yingge
    2009 INTERNATIONAL CONFERENCE ON MODELING, SIMULATION AND OPTIMIZATION, PROCEEDINGS, 2009, : 27 - 30
  • [25] Direct numerical simulation of turbulent channel flow of polymer solution
    Zhang, Jinbai
    Zheng, Zhaohu
    Beijing Hangkong Hangtian Daxue Xuebao/Journal of Beijing University of Aeronautics and Astronautics, 2009, 35 (12): : 1417 - 1420
  • [26] Direct numerical simulation of ellipsoidal particles in turbulent channel flow
    F. Zhao
    B. G. M. van Wachem
    Acta Mechanica, 2013, 224 : 2331 - 2358
  • [27] Direct numerical simulation of turbulent channel flow with permeable walls
    Hahn, Seonghyeon
    Je, Jongdoo
    Choi, Haecheon
    2002, Cambridge University Press (450)
  • [28] The direct numerical simulation of a turbulent channel flow with analyses of the database
    Department of Engineering Mechanics, Tsinghua University, Beijing 100084, China
    Comm. Nonlinear Sci. Numer. Simul., 2 (46-51):
  • [29] Direct numerical simulation of turbulent channel flow with permeable walls
    Hahn, S
    Je, J
    Choi, H
    JOURNAL OF FLUID MECHANICS, 2002, 450 : 259 - 285
  • [30] Direct Numerical Simulation of a Turbulent Channel Flow with Forchheimer Drag
    Bhattacharjee, Soumak
    Mortikov, Evgeny
    Debolskiy, Andrey
    Kadantsev, Evgeny
    Pandit, Rahul
    Vesala, Timo
    Sahoo, Ganapati
    BOUNDARY-LAYER METEOROLOGY, 2022, 185 (02) : 259 - 276