Trossman David S, Arbic Brian K, Straub David N, Richman James G, Chassignet Eric P, Wallcraft Alan J, Xu Xiaobiao
Goddard Earth Sciences Technology and Research, Greenbelt, Maryland, USA.
Department of Earth and Environmental Sciences, University of Michigan, Ann Arbor, USA.
J Phys Oceanogr. 2017 Aug;47(6):1-56. doi: 10.1175/JPO-D-16-0229.1. Epub 2017 Jul 14.
Motivated by the substantial sensitivity of eddies in two-layer quasi-geostrophic (QG) turbulence models to the strength of bottom drag, this study explores the sensitivity of eddies in more realistic ocean general circulation model (OGCM) simulations to bottom drag strength. The OGCM results are interpreted using previous results from horizontally homogeneous, two-layer, flat-bottom, f-plane, doubly periodic QG turbulence simulations and new results from two-layer -plane QG turbulence simulations run in a basin geometry with both flat and rough bottoms. Baroclinicity in all of the simulations varies greatly with drag strength, with weak drag corresponding to more barotropic flow and strong drag corresponding to more baroclinic flow. The sensitivity of the baroclinicity in the QG basin simulations to bottom drag is considerably reduced, however, when rough topography is used in lieu of a flat bottom. Rough topography reduces the sensitivity of the eddy kinetic energy amplitude and horizontal length scales in the QG basin simulations to bottom drag to an even greater degree. The OGCM simulation behavior is qualitatively similar to that in the QG rough bottom basin simulations in that baroclinicity is more sensitive to bottom drag strength than are eddy amplitudes or horizontal length scales. Rough topography therefore appears to mediate the sensitivity of eddies in models to the strength of bottom drag. The sensitivity of eddies to parameterized topographic internal lee wave drag, which has recently been introduced into some OGCMs, is also briefly discussed. Wave drag acts like a strong bottom drag in that it increases the baroclinicity of the flow, without strongly affecting eddy horizontal length scales.
受两层准地转(QG)湍流模型中涡旋对底部拖曳强度的显著敏感性所驱动,本研究探讨了在更现实的海洋环流模型(OGCM)模拟中涡旋对底部拖曳强度的敏感性。使用先前水平均匀、两层、平底、f平面、双周期QG湍流模拟的结果以及在具有平底和粗糙底部的盆地几何形状中运行的两层β平面QG湍流模拟的新结果来解释OGCM结果。在所有模拟中,斜压性随拖曳强度变化很大,弱拖曳对应于更正压的流,而强拖曳对应于更正压的流。然而,当使用粗糙地形代替平底时,QG盆地模拟中斜压性对底部拖曳的敏感性会大大降低。粗糙地形在更大程度上降低了QG盆地模拟中涡动能振幅和水平长度尺度对底部拖曳的敏感性。OGCM模拟行为在定性上与QG粗糙底部盆地模拟相似,即斜压性对底部拖曳强度的敏感性高于涡旋振幅或水平长度尺度。因此,粗糙地形似乎调节了模型中涡旋对底部拖曳强度的敏感性。还简要讨论了涡旋对最近已被引入一些OGCM中的参数化地形内背风波拖曳的敏感性。波拖曳的作用类似于强底部拖曳,因为它增加了流的斜压性,而不会强烈影响涡旋水平长度尺度。