arXiv · 1408.0708
Steady-state bifurcation analysis of a strong nonlinear atmospheric vorticity equation
Abstract
The quasi-geostrophic equation or the Euler equation with dissipation studied in the present paper is a simplified form of the atmospheric circulation model introduced by Charney and DeVore [J. Atmos. Sci. 36(1979), 1205-1216] on the existence of multiple steady states to the understanding of the persistence of atmospheric blocking. The fluid motion defined by the equation is driven by a zonal thermal forcing and an Ekman friction forcing measured by $\kappa>0$. It is proved that the steady-state solution is unique for $\kappa >1$ while multiple steady-state solutions exist for $\kappa<\kappa_{crit}$ with respect to critical value $\kappa_{crit}<1$. Without involvement of viscosity, the equation has strong nonlinearity as its nonlinear part contains the highest order derivative term. Steady-state bifurcation analysis is essentially based on the compactness, which can be simply obtained for semi-linear equations such as the Navier-Stokes equations but is not available for the quasi-geostrophic equation in the Euler formulation. Therefore the Lagrangian formulation of the equation is employed to gain the required compactness.
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Zhi-Min Chen. 2014-08-04. Steady-state bifurcation analysis of a strong nonlinear atmospheric vorticity equation. https://arxiv.org/abs/1408.0708
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