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首页> 外文期刊>Geophysical Research Letters >On sharp vorticity gradients in elongating baroclinic eddies and their stabilization with a solid-body rotation
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On sharp vorticity gradients in elongating baroclinic eddies and their stabilization with a solid-body rotation

机译:关于斜压涡旋涡旋中急剧的涡度梯度及其通过固体旋转的稳定作用

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Wide compensated vortices are not able to remain circular in idealized two-layer models unless the ocean depth is assumed to be unrealistically large. Small perturbations on both cyclonic and anticyclonic eddies grow slower if a middle layer with uniform potential vorticity (PV) is added, owing to a weakening of the vertical coupling between the upper and lower layers and a reduction of the PV gradient in the deep layer. Numerical simulations show that the nonlinear development of the most unstable elliptical mode causes self-elongation of the upper vortex core and splitting of the deep PV anomaly into two corotating parts. The emerging tripolar flow pattern in the lower layer results in self-intensification of the fluid rotation in the water column around the vortex center. Further vortex evolution depends on the model parameters and initial conditions, which limits predictability owing to multiple equilibrium attractors existing in the dynamical system. The vortex core strips thin filaments, which roll up into submesoscale vortices to result in substantial mixing at the vortex periphery. Stirring and damping of vorticity by bottom friction are found to be essential for subsequent vortex stabilization. The development of sharp PV gradients leads to nearly solid-body rotation inside the vortex core and formation of transport barriers at the vortex periphery. These processes have important implications for understanding the longevity of real-ocean eddies.
机译:在理想的两层模型中,除非假定海洋深度不切实际地大,否则宽补偿涡旋将无法保持圆形。如果添加一个具有均匀的势涡(PV)的中间层,则由于上层和下层之间的垂直耦合减弱以及深层中PV梯度的减小,对旋风涡旋和反气旋涡旋的小扰动增长都将变慢。数值模拟表明,最不稳定的椭圆模式的非线性发展会导致上部涡旋核的自伸长,并将深部PV异常分裂为两个同向旋转的部分。下层出现的三极流模式导致水柱中围绕涡旋中心的流体旋转自增强。进一步的涡旋演化取决于模型参数和初始条件,由于动力学系统中存在多个平衡吸引子,因而限制了可预测性。旋涡芯剥去细丝,这些细丝卷成亚中尺度的旋涡,从而在旋涡外围产生充分的混合。发现底部摩擦对涡旋的搅拌和阻尼对于随后的涡旋稳定至关重要。急剧的PV梯度的发展导致旋涡核心内部几乎发生固体旋转,并在旋涡外围形成传输势垒。这些过程对于理解真实海洋涡流的寿命具有重要意义。

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