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Dealing with uncertainty: turbulent parameterizations and grid-spacing effects in numerical modelling of deep moist convective processes

机译:处理不确定性:深湿对流过程数值模型中的湍流参数化和网格间距效应

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摘要

Computer power has grown to the point that very-fine-mesh mesoscale modelling is now possible. Going down through scales is clumsily supposed to reduce uncertainty and to improve the predictive ability of the models. This work provides a contribution to understand how the uncertainty in the numerical weather prediction (NWP) of severe weather events is affected by increasing the model grid resolution and by choosing a parameterization which is able to represent turbulent processes at such finer scales. A deep moist convective scenario, a supercell, in a simplified atmospheric setting is studied by mean of high resolution numerical simulations with COSMO-Model. Different turbulent closures are used and their impacts on the space-time properties of convective fields are discussed. The convective-resolving solutions adopting Large Eddy Simulation (LES) turbulent closure converge with respect to the overall flow field structure when grid spacing is properly reduced. By comparing the rainfall fields produced by the model on larger scales with those at the convergence scales it's possible to size up the uncertainty introduced by the modelling itself on the predicted ground effects in such simplified scenario.
机译:计算机功能已经发展到现在可以进行超细网格的中尺度建模了。笨拙地考虑使用比例尺可以减少不确定性并提高模型的预测能力。这项工作有助于理解如何通过增加模型网格分辨率和选择能够代表这种更精细尺度的湍流过程的参数化来影响恶劣天气事件的数值天气预报(NWP)中的不确定性。通过使用COSMO模型的高分辨率数值模拟,研究了在简化的大气环境中的深对流对流场景,即超级电池。使用了不同的湍流封闭,并讨论了它们对对流场的时空特性的影响。当网格间距适当减小时,采用大涡模拟(LES)湍流闭合的对流解决方案相对于整个流场结构收敛。通过将模型在较大尺度上产生的降雨场与收敛尺度上的降雨场进行比较,可以在这种简化的情况下,对模型本身在预测的地面效应上引入的不确定性进行评估。

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