Towards a seamlessly diagnosable expression for the energy flux associated with both equatorial and mid-latitude waves
For mid-latitude Rossby waves (RWs) in the atmosphere, the expression for the energy flux for use in a model diagnosis, and without relying on a Fourier analysis or a ray theory, has previously been derived using quasi-geostrophic equations and is singular at the equator. By investigating the analytical solution of both equatorial and mid-latitude waves, the authors derive an exact universal expression for the energy flux which is able to indicate the direction of the group velocity at all latitudes for linear shallow water waves. This is achieved by introducing a streamfunction as given by the inversion equation of Ertel's potential vorticity, a novel aspect for considering the energy flux. For ease of diagnosis from a model, an approximate version of the universal expression is explored and illustrated for a forced/dissipative equatorial basin mode simulated by a single-layer oceanic model that includes both mid-latitude RWs and equatorial waves. Equatorial Kelvin Waves (KWs) propagate eastward along the equator, are partially redirected poleward as coastal KWs at the eastern boundary of the basin, and then shed mid-latitude RWs that propagate westward into the basin interior. The connection of the equatorial and coastal waveguides has been successfully illustrated by the approximate expression of the group-velocity-based energy flux of the present study. This will allow for tropical-extratropical interactions in oceanic and atmospheric model outputs to be diagnosed in terms of an energy cycle in a future study.
展开 ▾面向赤道和中纬度波的能量通量的无缝可诊断表达式 · 本文基于浅水波解析解,通过引入由厄特尔位涡反演得到的流函数,推导了一个通用且无奇异性能量通量表达式,可指示所有纬度上线性波的群速度方向,并在单层海洋模型中成功展示了其连接赤道波与中纬度罗斯贝波的能力。
接收 2017-03-06 · 刊出 2017-03-31 · 收录 2026-07-22