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Buoyancy generated turbulence in stably stratified flow subjected to shear

机译:浮力产生湍流在稳定的流动中进行剪切

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The energy evolution in buoyancy-generated turbulence subjected to shear depends on the gradient Richardson number Ri and the stratification number St, which is a ratio of the time scale of the initial buoyancy fluctuations to the time scale of the mean stratification. During an initial period, the flow state evolves as in the unsheared case. After this period, shear generates fluctuating velocity components for St = 0.25, but it depletes the fluctuating vertical velocity component and temperature variance faster than in the unsheared case for St = 4. Weak shear causes the kinetic and total energy to decrease faster than in the unsheared case, while strong shear adds more energy in comparison with the unsheared case. Energy increased with time in only one case considered (St = 0.1 and Ri = 0.04). When St>1, the nonlinearity of the flow does not become significant even when Ri is small. Thus, results from rapid distortion theory and direct numerical simulation compare well. In particular, the theory reproduces trends in the energy evolution for St > 1.
机译:经过剪切的浮力产生的湍流中的能量演变取决于梯度Richardson数Ri和分层数ST,其是初始浮力波动的时间量表与平均分层的时间量表的比率。在初始时段期间,流动状态在未经护理的情况下发展。在此期间之后,剪切产生ST = 0.25的波动速度分量,但是它耗尽的波动垂直速度分量和温度方差快于ST = 4的无线壳体。弱剪切导致动力学和总能量减少比在无铅案例,而强烈的剪切与无线案例相比增加了更多能量。在仅考虑一种情况下,能量随时间增加(ST = 0.1和RI = 0.04)。当ST> 1时,即使RI小,流动的非线性也不会变得显着。因此,来自快速扭曲理论和直接数值模拟比较良好的结果。特别是,该理论可再现ST> 1的能量演进的趋势。

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