Some Further Aspects of Stable Boundary-Layer Simulation in a Stratified-Flow Wind Tunnel

被引:1
|
作者
Hancock, Philip E. [1 ]
Hayden, Paul [1 ]
机构
[1] Univ Surrey, Sch Mech Engn Sci, EnFlo Lab, Guildford GU2 7XH, Surrey, England
基金
英国工程与自然科学研究理事会;
关键词
Gradient Richardson number; Horizontal homogeneity; Local scaling; Stable boundary layer; Turbulent heat flux; Wind-tunnel simulation; THERMAL STRATIFICATION; TURBULENCE STRUCTURE; TURBINE;
D O I
10.1007/s10546-023-00805-1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
It is demonstrated that the vertical profile of gradient Richardson number, Ri, can be shaped by control of the working-section inlet temperature profile. In previous work (Hancock and Hayden in Boundary-Layer Meteorol 168:20-57, 2018; 175:93-112, 2020; 180:5-26, 2021) the inlet temperature profile had been specified but without control of the profile of Ri in the developed-flow region of the working section. Control of the inlet temperature profile is provided by 15 inlet heaters (spread uniformly across the height of the working section), allowing control of the temperature gradient over the bulk of the boundary layer, and the overall temperature level above that of the surface. The bulk Richardson number for the 11 cases covers the range 0.01-0.17 (there is no overlying inversion). In the upper approximate to 2/3 of the boundary layer the Reynolds stresses and turbulent heat flux are controlled by the gradient in mean temperature, while in the lower approximate to 1/3 they are controlled both by this gradient and by the level above the surface temperature. In three examples, Ri is approximately constant at 0.07, 0.10 and 0.13 across the bulk of the layer. The previous observation of horizontally homogenous behaviour in the temperature profiles in the top approximate to 2/3 of the boundary layer but not in the lower approximate to 1/3 is repeated here, except when, tentatively, Ri does not exceed 0.05 over the bulk of the boundary layer. Favourable validation comparisons are made against two sets of local scaling systems and field data over the full depth of the boundary layer, over the range 0.006 <= Ri <= 0.3, or, in terms of height and local Obukhov length, 0.005 <= z/L <= 1.
引用
收藏
页码:113 / 134
页数:22
相关论文
共 50 条
  • [41] Numerical simulation of separated boundary-layer flow
    B. Wasistho
    B. J. Geurts
    J. G. M. Kuerten
    Journal of Engineering Mathematics, 1997, 32 : 177 - 194
  • [42] Numerical simulation of separating boundary-layer flow
    Marquillie, M
    Ehrenstein, U
    COMPUTERS & FLUIDS, 2002, 31 (4-7) : 683 - 693
  • [43] Numerical simulation of separated boundary-layer flow
    Wasistho, B
    Geurts, BJ
    Kuerten, JGM
    JOURNAL OF ENGINEERING MATHEMATICS, 1997, 32 (2-3) : 177 - 194
  • [44] Rotational effects, on the boundary-layer flow in wind turbines
    Dumitrescu, H
    Cardos, V
    AIAA JOURNAL, 2004, 42 (02) : 408 - 411
  • [46] SOME ASPECTS TO RATIONAL TURBULENT BOUNDARY-LAYER COMPUTATION
    ROTTA, JC
    ZEITSCHRIFT FUR FLUGWISSENSCHAFTEN UND WELTRAUMFORSCHUNG, 1983, 7 (06): : 417 - 429
  • [47] Atmospheric boundary layer simulation in a short wind tunnel
    S. M. N. Shojaee
    O. Uzol
    Ö. Kurç
    International Journal of Environmental Science and Technology, 2014, 11 : 59 - 68
  • [48] An adjustment to atmospheric boundary layer at wind tunnel simulation
    Meteorological and Environmental Sensing Technology, Inc., Japan
    J. Wind Eng., 2007, 1 (45-50): : 45 - 50
  • [49] Atmospheric boundary layer simulation in a short wind tunnel
    Shojaee, S. M. N.
    Uzol, O.
    Kurc, O.
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2014, 11 (01) : 59 - 68
  • [50] Chimney plumes simulation in the boundary layer wind tunnel
    Jirsak, M
    Ulman, R
    AIR POLLUTION XI, 2003, 13 : 455 - 464