The Rossby Number: How Rotation Affects Ocean Circulation
DOI:
https://doi.org/10.61173/83sjbn26Keywords:
Rossby number, Ekman number, Ocean circulation, Coriolis force, Navier-Stokes equations, Scale analysis, Geostrophic balanceAbstract
This project investigates how the Rossby number influences ocean circulation. The Rossby number, defined as Ro =U / ( fL) , compares inertial forces to Coriolis forces and determines whether rotation dominates a given flow. Through non-dimensionalization of the Navier-Stokes equations, Ro emerges naturally as the ratio of these two forces. The same scale analysis also yields the Ekman number E =ν / ( fL2 ) , which measures the importance of viscous effects relative to rotation. We systematically define Ro and examine three regimes: Ro <<1 , Ro ~1 , and Ro >>1 . Each regime corresponds to different ocean circulation behaviors, from rotation-dominated large-scale currents to rotation-negligible small-scale motions. A typical mid-latitude ocean current yields Ro ~ 0.001 , confirming that rotation is the dominant control in large-scale ocean dynamics.
References
Price, J. F. (2010). A Coriolis Tutorial (Version 4.3.3). Woods Hole Oceanographic Institution / MIT OpenCourseWare. Cassano, J. (n.d.). Scale analysis of the equations of motion. In ATOC 4720: Introduction to Atmospheric Dynamics and Physics. University of Colorado Boulder. (2018). Dynamics II: Geophysical Fluid Dynamics. University of Bremen.
Kao, T. W. (1980). The dynamics of oceanic fronts. Part I: The Gulf Stream. Journal of Physical Oceanography, 10(4), 483– 492.
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