Li Ling, Shi Nan, du Puits Ronald, Resagk Christian, Schumacher Jörg, Thess André
Institut für Thermo- und Fluiddynamik, Technische Universität Ilmenau, Ilmenau, Germany.
Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Aug;86(2 Pt 2):026315. doi: 10.1103/PhysRevE.86.026315. Epub 2012 Aug 31.
We report measurements and numerical simulations of the three-dimensional velocity and temperature fields in turbulent Rayleigh-Bénard convection in air. Highly resolved velocity and temperature measurements inside and outside the boundary layers have been directly compared with equivalent data obtained in direct numerical simulations (DNSs). This comparison comprises a set of two Rayleigh numbers at Ra=3×10(9) and 3×10(10) and a fixed aspect ratio; this is the ratio between the diameter and the height of the Rayleigh-Bénard cell of Γ=1. We find that the measured velocity data are in excellent agreement with the DNS results while the temperature data slightly differ. In particular, the measured mean temperature profile does not show the linear trend as seen in the DNS data, and the measured gradients at the wall are significantly higher than those obtained from the DNS. Both viscous and thermal boundary layer thickness scale with respect to the Rayleigh number as δ(v)Ra(-0.24) and δ(θ)Ra(-0.24), respectively.
我们报告了空气中湍流瑞利 - 贝纳德对流中三维速度场和温度场的测量结果及数值模拟。边界层内外高分辨率的速度和温度测量结果已与直接数值模拟(DNS)中获得的等效数据进行了直接比较。这种比较包括在瑞利数Ra = 3×10⁹和3×10¹⁰以及固定纵横比(即瑞利 - 贝纳德单元直径与高度之比Γ = 1)下的一组数据。我们发现测量得到的速度数据与DNS结果非常吻合,而温度数据略有不同。特别是,测量得到的平均温度剖面没有显示出DNS数据中那样的线性趋势,并且在壁面处测量得到的梯度明显高于DNS得到的梯度。粘性和热边界层厚度分别相对于瑞利数按δ(v)Ra⁻⁰.²⁴和δ(θ)Ra⁻⁰.²⁴的规律变化。