Journal of the Atmospheric Sciences · 1983 · 450 citations · 0 references
MeteorologyAeroacousticsStorm SurgeEngineeringAerospace EngineeringStorm DynamicsFluid MechanicsTranslating HurricaneTurbulence ModelingBoundary Layer WindsTranslation SpeedAerodynamicsGeophysical FlowBoundary LayerEarth ScienceBoundary Layer Convergence
The effects of translation are relevant to both slowly and rapidly translating hurricanes. The study investigates how hurricane translation determines boundary‑layer wind distribution and convection organization. A constant‑depth slab boundary‑layer model with a truncated spectral formulation up to wavenumber 2 is used to analyze steady flow under a translating symmetric vortex, diagnosing linear and nonlinear asymmetric effects and comparing the results with observations of Hurricanes Frederic and Allen. Allen translated roughly twice as fast as Frederic, and the simple boundary‑layer model reproduces the qualitative wind field of Frederic and matches the observed convection patterns of both hurricanes.
An investigation is made of the role of the translation of a hurricane in determining the distribution of boundary layer winds and in the organization of convection. A slab boundary layer model of constant depth is used to analyze the steady flow under a specified translating symmetric vortex in gradient balance. A truncated spectral formulation is used, including asymmetries through wavenumber 2. The role of linear and nonlinear asymmetric effects in the determination of the boundary layer response is diagnosed. These effects am relevant to relatively slowly and rapidly translating hurricanes, respectively. The analysis is compared to observations of Hurricanes Frederic of 1979 and Allen of 1980, as well as to other observational and theoretical cures. Allen's translation speed was approximately twice that of Frederic. It is found that the simple boundary layer formulation simulates the qualitative features of the wind field observed in Frederic. The distribution of convection in Frederic and Allen compares favorably with boundary layer convergence diagnosed from the model.