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首页> 外文期刊>Geophysical and Astrophysical Fluid Dynamics >Effects of mesoscale eddies in the active mixed layer: test of the parametrisation in eddy resolving simulations
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Effects of mesoscale eddies in the active mixed layer: test of the parametrisation in eddy resolving simulations

机译:中尺度涡流在活性混合层中的作用:涡流解析模拟中的参数化测试

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In eddy resolving simulations, we test a mixed layer mesoscale parametrisation, developed recently by Canuto and Dubovikov [Ocean Model., 2011, 39, 200-207]. With no adjustable parameters, the parametrisation yields the horizontal and vertical mesoscale fluxes in terms of coarse-resolution fields and eddy kinetic energy (EKE). We compare terms of the parametrisation diagnosed from coarse-grained fields with the eddy mesoscale fluxes diagnosed directly from the high resolution model. An expression for the EKE in terms of mean fields has also been found to get a closed parametrisation in terms of the mean fields only. In 40 numerical experiments we simulated two types of flows: idealised flows driven by baroclinic instabilities only, and more realistic flows, driven by wind and surface fluxes as well as by inflow-outflow. The diagnosed quasi-instantaneous horizontal and vertical mesoscale buoyancy fluxes (averaged over 1 degrees - 2 degrees and 10 days) demonstrate a strong scatter typical for turbulent flows, however, the fluxes are positively correlated with the parametrisation with higher (0.5-0.74) correlations at the experiments with larger baroclinic radius Rossby. After being averaged over 3-4 months, diffusivities diagnosed from the eddy resolving simulations are consistent with the parametrisation for a broad range of parameters. Diagnosed vertical mesoscale fluxes restratify mixed layer and are in a good agreement with the parametrisation unless vertical turbulent mixing in the upper layer becomes strong enough in comparison with mesoscale advection. In the latter case, numerical simulations demonstrate that the deviation of the fluxes from the parametrisation is controlled by dimensionless parameter estimating the ratio of vertical turbulent mixing term to mesoscale advection. An analysis using a modified omega-equation reveals that the effects of the vertical mixing of vorticity is responsible for the two-three fold amplification of vertical mesoscale flux. Possible physical mechanisms, responsible for the amplification of vertical mesoscale flux are discussed.
机译:在涡旋解析模拟中,我们测试了Canuto和Dubovikov最近开发的混合层中尺度参数化[Ocean Model。,2011,39,200-207]。如果没有可调整的参数,则参数化会根据粗糙分辨率场和涡动能(EKE)产生水平和垂直中尺度通量。我们将通过粗粒度场诊断出的参数化条件与直接从高分辨率模型诊断出的涡旋中尺度通量进行比较。还发现以平均场为单位的EKE表达式仅根据平均场得到了封闭的参数化。在40个数值实验中,我们模拟了两种类型的流动:仅由斜压不稳定性驱动的理想流动,以及由风和表面通量以及流入流出驱动的更实际的流动。经诊断的准瞬时水平和垂直中尺度浮力通量(平均超过1度-2度和10天)显示出湍流典型的强散射,但是,这些通量与参数化呈正相关,相关性更高(0.5-0.74)在较大斜压半径Rossby的实验中。经过3-4个月的平均后,从涡旋解析模拟中诊断出的扩散率与各种参数的参数化一致。诊断的垂直中尺度通量使混合层重新定形,并且与参数化非常吻合,除非与中尺度对流相比,上层的垂直湍流混合变得足够强。在后一种情况下,数值模拟表明通量与参量的偏差由无量纲参数控制,该参数估计垂直湍流混合项与中尺度对流的比率。使用修改后的欧米茄方程进行的分析表明,垂直混合涡度的影响是垂直中尺度通量的2倍放大。可能的物理机制,负责垂直中尺度通量的放大。

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