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首页> 外文期刊>Boundary-Layer Meteorology >Turbulence Characteristics of the Shear-Free Convective Boundary Layer Driven by Heterogeneous Surface Heating
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Turbulence Characteristics of the Shear-Free Convective Boundary Layer Driven by Heterogeneous Surface Heating

机译:非均匀表面加热驱动的无剪切对流边界层的湍流特性

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Large-eddy simulations (LESs) are employed to investigate the turbulence characteristics in the shear-free convective boundary layer (CBL) driven by heterogeneous surface heating. The patterns of surface heating are arranged as a chessboard with two different surface heat fluxes in the neighbouring patches, and the heterogeneity scale Λ in four different cases is taken as 1.2, 2.5, 5.0 and 10.0 km, respectively. The results are compared with those for the homogeneous case. The impact of the heterogeneity scale on the domain-averaged CBL characteristics, such as the profiles of the potential temperature and the heat flux, is not significant. However, different turbulence characteristics are induced by different heterogeneous surface heating. The greatest turbulent kinetic energy (TKE) is produced in the case with the largest heterogeneity scale, whilst the TKE in the other heterogeneous cases is close to that for the homogeneous case. This result indicates that the TKE is not enhanced unless the scale of the heterogeneous surface heating is large enough. The potential temperature variance is enhanced more significantly by a larger surface heterogeneity scale. But this effect diminishes with increasing CBL height, which implies that the turbulent eddy structures are changed during the CBL development. Analyses show that there are two types of organized turbulent eddies: one relates to the thermal circulations induced by the heterogeneous surface heating, whilst the other identifies with the inherent turbulent eddies (large eddies) induced by the free convection. At the early stage of the CBL development, the dominant scale of the organized turbulent eddies is controlled by the scale of the surface heterogeneity. With time increasing, the original pattern breaks up, and the vertical velocity eventually displays horizontal structures similar to those for the homogeneous heating case. It is found that after this transition, the values of λ/z i (λ is the dominant horizontal scale of the turbulent eddies, z i is the boundary-layer height) ≈1.6, which is just the aspect ratio of large eddies in the CBL.
机译:大涡模拟(LESs)用于研究非均质表面加热驱动的无剪切对流边界层(CBL)的湍流特性。表面加热的模式被布置成具有两个不同表面热通量的棋盘,在相邻的块中,并且在四种不同情况下的异质性尺度Λ分别取为1.2、2.5、5.0和10.0 km。将结果与同类情况下的结果进行比较。异质性尺度对域平均CBL特性(例如势能温度和热通量的分布图)的影响不明显。然而,不同的异质表面加热会引起不同的湍流特性。在非均质性规模最大的情况下产生最大的湍动能(TKE),而在其他非均质情况下则产生的湍流动能接近于均质情况。该结果表明,除非异质表面加热的规模足够大,否则TKE不会提高。较大的表面异质性尺度会更明显地提高潜在的温度变化。但是这种影响随着CBL高度的增加而减弱,这意味着在CBL的发展过程中湍流涡结构发生了变化。分析表明,有两种类型的有组织湍流涡流:一种与非均匀表面加热引起的热循环有关,另一种与自由对流引起的固有湍流涡流(大涡流)有关。在CBL发展的早期,有组织的湍流涡旋的主导尺度是由表面异质性的尺度控制的。随着时间的增加,原始图案破裂,垂直速度最终显示出类似于均匀加热情况的水平结构。发现在此过渡之后,λ/ z i 的值(λ是湍流的主要水平尺度,z i 是边界层高度) ≈1.6,这只是CBL中大涡旋的长宽比。

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