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Comparison of ocean vertical mixing schemes in the Max Planck Institute Earth System Model (MPI-ESM1.2)

机译:MAX Planck Inthe地球系统模型中海垂垂直混合方案的比较(MPI-ESM1.2)

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摘要

For the first time, we compare the effects of four different ocean vertical mixing schemes on the mean state of the ocean and atmosphere in the Max Planck Institute Earth System Model (MPI-ESM1.2). These four schemes are namely the default Pacanowski and Philander (1981) (PP) scheme, the K-profile parameterization (KPP) from the Community Vertical Mixing (CVMix) library, a recently implemented scheme based on turbulent kinetic energy (TKE), and a recently developed prognostic scheme for internal wave dissipation, energy, and mixing (IDEMIX) to replace the often assumed constant background diffusivity in the ocean interior. In this study, the IDEMIX scheme is combined with the TKE scheme (collectively called the TKE+IDEMIX scheme) to provide an energetically more consistent framework for mixing, as it does not rely on the unwanted effect of creating spurious energy for mixing. Energetic consistency can have implications on the climate. Therefore, we focus on the effects of TKE+IDEMIX on the climate mean state and compare them with the first three schemes that are commonly used in other models but are not energetically consistent. We find warmer sea surface temperatures (SSTs) in the North Atlantic and Nordic Seas using KPP or TKE(+IDEMIX), which is related to 10 % higher overflows that cause a stronger and deeper upper cell of the Atlantic meridional overturning circulation (AMOC) and thereby an enhanced northward heat transport and higher inflow of warm and saline water from the Indian Ocean into the South Atlantic. Saltier subpolar North Atlantic and Nordic Seas lead to increased deep convection and thus to the increased overflows. Due to the warmer SSTs, the extratropics of the Northern Hemisphere become warmer with TKE(+IDEMIX), weakening the meridional gradient and thus the jet stream. With KPP, the tropics and the Southern Hemisphere also become warmer without weakening the jet stream. Using an energetically more consistent scheme (TKE+IDEMIX) produces a more heterogeneous and realistic pattern of vertical eddy diffusivity, with lower diffusivities in deep and flat-bottom basins and elevated turbulence over rough topography. IDEMIX improves in particular the diffusivity in the Arctic Ocean and reduces the warm bias in the Atlantic Water layer. We conclude that although shortcomings due to model resolution determine the global-scale bias pattern, the choice of the vertical mixing scheme may play an important role for regional biases.
机译:我们首次比较了四种不同的海洋垂直混合方案对Max Planck Intrace地球系统模型(MPI-ESM1.2)的海洋和大气的平均状态的影响。这四个方案即是默认的Pacanowski和Phildander(1981)(PP)方案,来自社区垂直混合(CVMIX)库的K-Profile参数化(KPP),最近实现了基于湍流动能(TKE)的方案,以及最近开发了用于内部波浪耗散,能量和混合(IDEMIX)的预后方案,以取代海洋内部的经常假设的恒定背景扩散率。在这项研究中,IDEMIX方案与TKE方案(统称为TKE + IDEMIX方案)组合,以提供能量更为一致的混合框架,因为它不依赖于为混合产生虚假能量的不希望的效果。精力充沛的一致性可能对气候产生影响。因此,我们专注于TKE + IDEMIX对气候平均状态的影响,并将它们与其他模型中常用的前三种方案进行比较,但并不能够一致。我们使用KPP或TKE(+ IDEMIX)在北大西洋和北欧海洋中找到了温暖的海面温度(SST),这与溢流的10%溢流有关,导致大西洋经济倾覆循环(AMOC)的更强大和更深的上部细胞因此,从印度洋进入南大西洋,增强了向北热传输和较高的温暖和盐水流入。 Saltier Subpolar North Atlantic和Nordic Sear导致增加深入对流,从而增加溢出增加。由于温暖的SST,北半球的越潜水线与TKE(+ IDEMIX)变暖,削弱了子午梯度,从而削弱了喷射流。随着KPP,热带地带和南半球也变得更温暖,而不会削弱喷射流。使用能量更一致的方案(TKE + IDEMIX)产生更加异质的垂直涡流模式和逼真的模式,具有深层和平坦底部池中的较低扩散性,并且在粗糙的地形上湍流升高。 IDEMIX特别提高了北冰洋的扩散性,并减少了大西洋水层中的温暖偏差。我们得出结论,尽管模型分辨率导致的缺点决定了全球范围偏差模式,但垂直混合方案的选择可能对区域偏差起着重要作用。

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