Velocity and acceleration statistics in rapidly rotating Rayleigh-Benard convection

被引:10
|
作者
Rajaei, Hadi [1 ,2 ]
Alards, Kim M. J. [1 ,2 ]
Kunnen, Rudie P. J. [1 ,2 ]
Clercx, Herman J. H. [1 ,2 ]
机构
[1] Eindhoven Univ Technol, Dept Appl Phys, Fluid Dynam Lab, POB 513, NL-5600 MB Eindhoven, Netherlands
[2] Eindhoven Univ Technol, JM Burgers Ctr Fluid Dynam, POB 513, NL-5600 MB Eindhoven, Netherlands
基金
欧洲研究理事会;
关键词
rotating turbulence; turbulent convection; waves in rotating fluids; PARTICLE TRACKING VELOCIMETRY; FULLY-DEVELOPED TURBULENCE; HEAT-TRANSPORT; PRECESSING CYLINDER; 3-DIMENSIONAL FLOWS; LAGRANGIAN VELOCITY; GEOSTROPHIC REGIME; BOUNDARY-LAYER; PRANDTL NUMBER; ZONAL FLOWS;
D O I
10.1017/jfm.2018.751
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Background rotation causes different flow structures and heat transfer efficiencies in Rayleigh-Benard convection. Three main regimes are known: rotation unaffected, rotation affected and rotation dominated. It has been shown that the transition between rotation-unaffected and rotation-affected regimes is driven by the boundary layers. However, the physics behind the transition between rotation-affected and rotation-dominated regimes are still unresolved. In this study, we employ the experimentally obtained Lagrangian velocity and acceleration statistics of neutrally buoyant immersed particles to study the rotation-affected and rotation-dominated regimes and the transition between them. We have found that the transition to the rotation-dominated regime coincides with three phenomena; suppressed vertical motions, strong penetration of vortical plumes deep into the bulk and reduced interaction of vortical plumes with their surroundings. The first two phenomena are used as confirmations for the available hypotheses on the transition to the rotation-dominated regime while the last phenomenon is a new argument to describe the regime transition. These findings allow us to better understand the rotation-dominated regime and the transition to this regime.
引用
收藏
页码:374 / 397
页数:24
相关论文
共 50 条
  • [21] Scaling laws for rotating Rayleigh-Benard convection
    Scheel, JD
    Cross, MC
    PHYSICAL REVIEW E, 2005, 72 (05):
  • [22] Heteroclinic behavior in rotating Rayleigh-Benard convection
    Demircan, A
    Scheel, S
    Seehafer, N
    EUROPEAN PHYSICAL JOURNAL B, 2000, 13 (04): : 765 - 775
  • [23] Vortex dynamics in rotating Rayleigh-Benard convection
    Ding, Shan-Shan
    Ding, Guang-Yu
    Chong, Kai Leong
    Wu, Wen-Tao
    Xia, Ke-Qing
    Zhong, Jin-Qiang
    JOURNAL OF FLUID MECHANICS, 2023, 974
  • [24] Numerical simulations of rotating Rayleigh-Benard convection
    Stevens, Richard J. A. M.
    Clercx, Herman J. H.
    Lohse, Detlef
    DIRECT AND LARGE-EDDY SIMULATION VIII, 2011, 15 : 359 - +
  • [25] The amplitude equation for rotating Rayleigh-Benard convection
    Scheel, J. D.
    PHYSICS OF FLUIDS, 2007, 19 (10)
  • [26] Mode interaction in rotating Rayleigh-Benard convection
    Rüdiger, S
    Knobloch, E
    FLUID DYNAMICS RESEARCH, 2003, 33 (5-6) : 477 - 492
  • [27] Vortex structure in rotating Rayleigh-Benard convection
    Vorobieff, P
    Ecke, RE
    PHYSICA D-NONLINEAR PHENOMENA, 1998, 123 (1-4) : 153 - 160
  • [28] Hard turbulence in rotating Rayleigh-Benard convection
    Julien, K
    Legg, S
    McWilliams, J
    Werne, J
    PHYSICAL REVIEW E, 1996, 53 (06) : R5557 - R5560
  • [29] Structure functions in rotating Rayleigh-Benard convection
    Kunnen, R. P. J.
    Clercx, H. J. H.
    Geurts, B. J.
    13TH EUROPEAN TURBULENCE CONFERENCE (ETC13): CONVECTION, ROTATION, STRATIFICATION AND BUOYANCY EFFECTS, 2011, 318
  • [30] Countertraveling waves in rotating Rayleigh-Benard convection
    Li, Ligang
    Liao, Xinhao
    Zhang, Keke
    PHYSICAL REVIEW E, 2008, 77 (02):