Rayleigh-Benard convection in open and closed rotating cavities

被引:0
|
作者
King, Martin P. [1 ]
Wilson, Michael [1 ]
Owen, J. Michael [1 ]
机构
[1] Ctr Theoret Phys, Abdus Salam Int, Trieste, Italy
关键词
Rayleigh-Benard convection; rotating cavities; HEAT-TRANSFER; AXIAL THROUGHFLOW; COOLING AIR; THEORETICAL INVESTIGATIONS; ANNULI;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
Buoyancy effects can be significant in the rotating annular cavities found between compressor discs in gas-turbine engines, where Rayleigh numbers above 10(12) are common. In some engines, the cavity is 'closed', so that the air is confined between four rotating surfaces: two discs and inner and outer cylinders. In most engines, however, the cavity is 'open', and there is an axial throughflow of cooling air at the centre. For open rotating cavities, a review of the published evidence suggests a Rayleigh-Benard type of flow structure, in which, at the larger radii, there are pairs of cyclonic and anticyclonic vortices. The toroidal circulation created by the axial throughflow is usually restricted to the smaller radii in the cavity. For a closed rotating annulus, solution of the unsteady Navier-Stokes equations, for Rayleigh numbers up to 10(9), show Rayleigh-Benard convection similar to that found in stationary enclosures. The computed streamlines in the r-theta plane show pairs of cyclonic and anti-cyclonic vortices; but, at the larger Rayleigh numbers, the computed isotherms suggest that the flow in the annulus is thermally mixed. At the higher Rayleigh numbers, the computed instantaneous Nusselt numbers are unsteady and tend to oscillate with time. The computed time-average Nusselt numbers are in good agreement with the correlations for Rayleigh-Benard convection in a stationary enclosure, but they are significantly higher than the published empirical correlations for a closed rotating annulus.
引用
收藏
页码:1181 / 1189
页数:9
相关论文
共 50 条
  • [41] Heat transfer in rotating Rayleigh-Benard convection with rough plates
    Joshi, Pranav
    Rajaei, Hadi
    Kunnen, Rudie P. J.
    Clercx, Herman J. H.
    JOURNAL OF FLUID MECHANICS, 2017, 830
  • [42] ROTATING RAYLEIGH-BENARD CONVECTION - KUPPERS-LORTZ TRANSITION
    FANG, Z
    ECKE, R
    STEINBERG, V
    PHYSICA D, 1991, 51 (1-3): : 596 - 607
  • [43] Velocity and acceleration statistics in rapidly rotating Rayleigh-Benard convection
    Rajaei, Hadi
    Alards, Kim M. J.
    Kunnen, Rudie P. J.
    Clercx, Herman J. H.
    JOURNAL OF FLUID MECHANICS, 2018, 857 : 374 - 397
  • [44] Boundary layers in rotating weakly turbulent Rayleigh-Benard convection
    Stevens, Richard J. A. M.
    Clercx, Herman J. H.
    Lohse, Detlef
    PHYSICS OF FLUIDS, 2010, 22 (08)
  • [45] Robust wall states in rapidly rotating Rayleigh-Benard convection
    Favier, Benjamin
    Knobloch, Edgar
    JOURNAL OF FLUID MECHANICS, 2020, 895
  • [47] Heat transport in rotating-lid Rayleigh-Benard convection
    Vishnu, R.
    Sameen, A.
    PHYSICA SCRIPTA, 2019, 94 (05)
  • [48] Directional change of tracer trajectories in rotating Rayleigh-Benard convection
    Alards, Kim M. J.
    Rajaei, Hadi
    Kunnen, Rudie P. J.
    Toschi, Federico
    Clercx, Herman J. H.
    PHYSICAL REVIEW E, 2018, 97 (06)
  • [49] Intensified heat transfer in modulated rotating Rayleigh-Benard convection
    Geurts, Bernard J.
    Kunnen, Rudie P. J.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2014, 49 : 62 - 68
  • [50] Sensitivity of rapidly rotating Rayleigh-Benard convection to Ekman pumping
    Plumley, Meredith
    Julien, Keith
    Marti, Philippe
    Stellmach, Stephan
    PHYSICAL REVIEW FLUIDS, 2017, 2 (09):