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Preliminary Tests of Multiscale Modeling with a Two-Dimensional Framework: Sensitivity to Coupling Methods

机译:具有二维框架的多尺度建模的初步测试:对耦合方法的敏感性

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Preliminary tests of the multiscale modeling approach, also known as the cloud-resolving convective parameterization, or superparameterization, are performed using an idealized framework. In this approach, a two-dimensional cloud-system resolving model (CSRM) is embedded within each vertical column of a general circulation model (GCM) replacing conventional cloud parameterization. The purpose of this study is to investigate the coupling between the GCM and CSRMs and suggest a revised method of coupling that abandons the cyclic lateral boundary condition for each CSRM used in the original cloud-resolving convective parameterization. In this way, the CSRM extends into neighboring GCM grid boxes while sharing approximately the same mass fluxes with the GCM at the borders of the grid boxes. With the original and revised methods of coupling, numerical simulations of the evolution of cloud systems are conducted using a two-dimensional model that couples CSRMs with a lower-resolution version of the CSRM with no physics [large-scale dynamics model (LSDM)]. The results with the revised method show that cloud systems can propagate from one LSDM grid column to the next as expected. Comparisons with a straightforward application of a single CSRM to the entire domain (CONTROL) show that the biases of the large-scale thermodynamic fields simulated by the coupled model are significantly smaller with the revised method. The results also show that the biases are near the smallest when the velocity fields of the LSDM and CSRM are nudged to each other with the time scale of a few hours and the thermodynamic field of the LSDM is instantaneously updated at each time step with the domain-averaged CSRM field.
机译:多尺度建模方法(也称为云解析对流参数化或超参数化)的初步测试是使用理想化框架执行的。在这种方法中,将二维云系统解析模型(CSRM)嵌入到通用循环模型(GCM)的每个垂直列中,以代替常规的云参数化。这项研究的目的是研究GCM和CSRM之间的耦合,并提出一种修改后的耦合方法,该方法放弃了在原始云解析对流参数化中使用的每个CSRM的循环横向边界条件。这样,CSRM扩展到相邻的GCM网格框中,同时在网格框的边界处与GCM共享大约相同的质量通量。利用原始和修正的耦合方法,使用二维模型对云系统的演化进行了数值模拟,该二维模型将CSRM与较低分辨率的CSRM耦合,而没有物理[大型动力学模型(LSDM)]。 。修改后的方法的结果表明,云系统可以按预期从一个LSDM网格列传播到下一列。通过将单个CSRM直接应用到整个域(控制)的比较表明,使用修正方法,耦合模型所模拟的大规模热力学场的偏差要小得多。结果还表明,当LSDM和CSRM的速度场在几小时的时间范围内相互推移并且LSDM的热力学场在每个时间步长随域而瞬时更新时,偏差接近最小。平均CSRM字段。

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