首页> 外文期刊>Geophysical and Astrophysical Fluid Dynamics >Interaction between a surface quasi-geostrophic buoyancy filament and an internal vortex
【24h】

Interaction between a surface quasi-geostrophic buoyancy filament and an internal vortex

机译:表面准地转浮力丝与内部涡旋之间的相互作用

获取原文
获取原文并翻译 | 示例
           

摘要

This paper focuses on the nonlinear interaction between a surface quasi-geostrophic buoyancy filament and an internal vortex. We first revisit the stability of an isolated buoyancy filament. The buoyancy profile considered is continuous and leads to a continuous velocity field, albeit one with infinite shear just outside its edge. The stability properties of an isolated filament help to interpret the unsteady interaction with a sub-surface (internal) vortex studied next. We find that, in all cases, the filament breaks into billows, analogous in form to those occurring in Kelvin-Helmholtz shear instability. For intense buoyancy filaments, the vortex itself may undergo strong deformations, including being split into several pieces. Generally, the nonlinear interaction causes both the filament and the vortex to lose their respective self-energies to the energy of interaction. The flow evolution depends sensitively on whether the vertical vorticity of the filament and the vortex have the same or opposite signs - termed cooperative and adverse shear respectively. In cooperative shear, the filament rolls up into a coherent surface eddy above a vortex initially placed below it, whereas in adverse shear, buoyancy is expelled above the vortex. Although sufficiently great shear induced by the buoyancy filament may split the vortex in both cases, adverse shear is significantly more destructive.
机译:本文重点研究表面准地转浮力丝与内部涡旋之间的非线性相互作用。我们首先回顾一下隔离浮力丝的稳定性。所考虑的浮力曲线是连续的,并导致连续的速度场,尽管刚好在其边缘外部具有无限的剪切力。隔离的灯丝的稳定性能有助于解释与接下来研究的地下(内部)涡旋的不稳定相互作用。我们发现,在所有情况下,长丝都会破裂成波浪状,其形式类似于开尔文-亥姆霍兹剪切不稳定性中发生的形式。对于强烈的浮力丝,涡旋本身可能会发生强烈变形,包括分裂成几部分。通常,非线性相互作用使细丝和涡流都失去了它们各自的自能量,成为相互作用的能量。流动的演化敏感地取决于细丝和涡流的垂直涡度是否具有相同或相反的符号-分别称为协同剪切和逆剪切。在协同剪切中,细丝在最初置于其下方的涡旋上方卷成一个连贯的表面涡流,而在不利剪切中,浮力在涡旋上方排出。尽管在这两种情况下,浮力丝所引起的足够大的剪切力都会使涡旋分裂,但不利的剪切力更具破坏性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号