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The regional oceanic modeling system (ROMS): a split-explicit, free-surface, topography-following-coordinate oceanic model

机译:区域海洋建模系统(ROMS):明确的,自由表面的,地形跟随坐标的海洋模型

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The purpose of this study is to find a combination of optimal numerical algorithms for time-stepping and mode-splitting suitable for a high-resolution, free-surface, terrain-following coordinate oceanic model. Due to mathematical feedback between the baroclinic momentum and tracer equations and, similarly, between the barotropic momentum and continuity equations, it is advantageous to treat both modes so that, after a time step for the momentum equation, the computed velocities participate immediately in the computation of tracers and continuity, and vice versa, rather than advancing all equations for one time step simultaneously. This leads to a new family of time-stepping algorithms that combine forward-backward feedback with the best known synchronous algorithms, allowing an increased time step due to the enhanced internal stability without sacrificing its accuracy. Based on these algorithms we design a split-explicit hydrodynamic kernel for a realistic oceanic model, which addresses multiple numerical issues associated with mode splitting. This kernel utilizes consistent temporal averaging of the barotropic mode via a specially designed filter function to guarantee both exact conservation and constancy preservation properties for tracers and yields more accurate (up to second-order), resolved barotropic processes, while preventing aliasing of unresolved barotropic signals into the slow baroclinic motions. It has a more accurate mode-splitting due to redefined barotropic pressure-gradient terms to account for the local variations in density field, while maintaining the computational efficiency of a split model. It is naturally compatible with a variety of centered and upstream-biased high-order advection algorithms, and helps to mitigate computational cost of expensive physical parameterization of mixing processes and submodels. (c) 2004 Elsevier Ltd. All rights reserved.
机译:这项研究的目的是找到适用于高分辨率,自由表面,地形跟随坐标海洋模型的时间步长和模式分裂的最佳数值算法的组合。由于斜压动量和示踪方程之间,以及正压动量和连续方程之间存在数学反馈,因此对这两种模式进行处理都是有利的,因此,在动量方程经过一定时间后,计算出的速度立即参与了计算跟踪器和连续性,反之亦然,而不是同时将所有方程式提前一个时间步。这导致了新的时间步长算法系列,将前向后反馈与最著名的同步算法相结合,由于在不牺牲精度的情况下增强了内部稳定性,从而增加了时间步长。基于这些算法,我们为现实的海洋模型设计了一个显式分裂的水动力内核,该内核解决了与模式分裂相关的多个数值问题。该内核通过特殊设计的滤波功能利用正压模式的一致时间平均,以确保示踪剂具有精确的守恒性和恒定性,并产生更精确的(高达二阶)解析正压过程,同时防止未解析正压信号混叠缓慢的斜压运动。由于重新定义了正压压力梯度项,因此它具有更准确的模式拆分,可以解决密度场的局部变化,同时保持拆分模型的计算效率。它自然地与各种居中和上游偏向的高阶对流算法兼容,并有助于减轻混合过程和子模型的昂贵物理参数化的计算成本。 (c)2004 Elsevier Ltd.保留所有权利。

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