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首页> 外文期刊>Journal of Physical Oceanography >Why Are Eddy Fluxes of Potential Vorticity Difficult to Parameterize?
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Why Are Eddy Fluxes of Potential Vorticity Difficult to Parameterize?

机译:为什么潜在涡度的涡流很难进行参数化?

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Eddy fluxes systematically affect the larger-scale, time-mean state, but their local behavior is difficult to parameterize. To understand how eddy fluxes of potential vorticity (PV) are controlled, the enstrophy budget is diagnosed for a five-layer, 1/16°, eddy-resolving, isopycnic model of a wind-driven, flat-bottom basin. The direction of the eddy flux across the mean PV contours is controlled by the Lagrangian evolution of enstrophy, including contributions from the temporal change and mean and eddy advection, as well as dissipation of enstrophy. During the spinup, an overall increase in enstrophy is consistent with eddy fluxes being directed downgradient on average and homogenization of PV within intermediate layers. Enstrophy becomes largest along the flanks of the gyre, where PV gradients are large, and becomes smallest in the interior. At a statistically steady state, there is a reversing pattern of up- and downgradient eddy PV fluxes, which are locally controlled by the advection of enstrophy. A downgradient eddy PV flux occurs only on the larger scale over the gyre flanks and part of the western boundary. These larger-scale patterns are controlled by the eddy advection of enstrophy, which becomes significant in regions of high eddy enstrophy. As a consequence, at a statistically steady state, the eddy PV fluxes are not simply related to the mean fields, and their local, finescale pattern is difficult to parameterize.
机译:涡通量系统性地影响较大的时间平均状态,但是很难对其局部行为进行参数化。为了了解如何控制潜在涡度(PV)的涡通量,对风驱动的平底盆地的五层,1/16°涡旋解析等温模型诊断了涡旋预算。涡流在平均PV轮廓上的方向由涡旋的拉格朗日演化控制,包括时间变化,涡旋平流和涡旋的贡献,以及涡旋的消散。在旋转过程中,总涡流的增加与涡流平均被引导向下梯度以及中间层内PV的均质化相一致。在PV梯度较大的情况下,涡流沿回旋的侧面最大,而在内部则最小。在统计上稳定的状态下,存在涡流PV上下波动的反转模式,该涡流通过涡旋对流局部控制。涡流PV下降梯度仅在回旋侧翼和西部边界的一部分较大范围内发生。这些较大比例的模式受涡旋涡旋平流的控制,这在涡旋涡旋高涡的区域变得很重要。结果,在统计上稳定的状态下,涡流PV通量不仅仅与均值场相关,并且它们的局部细尺度模式很难参数化。

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