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Numerical and laboratory study of horizontally evolving convective boundary layer. part II: Effects of elevated wind shear and surface roughness

机译:水平演化对流边界层的数值和室内研究。第二部分:风切变和表面粗糙度升高的影响

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Modifications of turbulence regime in the sheared convective boundary layer (CBL) by a number of external nonbuoyant forcings are studied experimentally in a thermally stratified wind tunnel and numerically by means of large eddy simulation. This type of CBL is observed in the atmosphere when an originally neutral or stable air mass is advected over a heated underlying surface. Emphasis in the present study is laid on the effects of elevated wind shear and surface roughness on the structure and evolution of the CBL. For the flow cases, for which both numerical and wind tunnel results are available, the numerical predictions of mean flow parameters and turbulence statistics are found to be in good agreement with the experimental results. In the case of wind shear across the inversion layer, the authors distinguish between positive shear, when the flow above the inversion possesses a higher momentum than mean motion in the mixed layer, and the opposite case of negative shear. For the case of positive shear the growth of the CBL is found to be impeded compared to the shear-free case. Negative shear has an opposite effect on the CBL evolution. In this case, the damping of thermals by stable stratification in the inversion layer is weakened compared to the shear-free case and consequently entrainment is activated. A physical explanation for such a directional effect of elevated shear is suggested. In the case of enhanced bottom roughness, both experiments and numerical simulations provide the evidence of slightly larger CBL growth rate compared to the CBL over a relatively smooth surface with a 10 times smaller roughness length. [References: 21]
机译:在热分层风洞中,通过大量的外部涡流实验研究了剪切对流边界层(CBL)中湍流状态对外界非浮力的影响,并通过大涡模拟进行了数值模拟。当在加热的下垫面平流时产生原始的中性或稳定气团时,可在大气中观察到这种CBL。本研究的重点是高风切变和表面粗糙度对CBL结构和演化的影响。对于同时具有数值和风洞结果的流动情况,均流参数和湍流统计的数值预测与实验结果非常吻合。在横穿反演层的风切变的情况下,作者区分了正切变和负切变的情况,当正切变高于混合层中的平均运动时,反演以上的动量具有较高的动量。对于正剪切的情况,与无剪切的情况相比,发现CBL的生长受到阻碍。负剪切力对CBL的演化有相反的影响。在这种情况下,与无剪切力的情况相比,在反转层中由于稳定的分层引起的热衰减减弱了,因此夹带被激活。建议使用物理解释来说明这种剪切效应的定向效应。在底部粗糙度提高的情况下,实验和数值模拟均提供了与CBL相比在相对光滑的表面上粗糙度略小10倍的CBL增长速率稍大的证据。 [参考:21]

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