Planetary Shock WavesSource: Journal of Physical Oceanography:;1987:;Volume( 017 ):;issue: 004::page 470Author:Dewar, William K.
DOI: 10.1175/1520-0485(1987)017<0470:PSW>2.0.CO;2Publisher: American Meteorological Society
Abstract: A number of general circulation models have recently been proposed that compute the steady-state structure of the general circulation. Observation of 18°C water formation, on the other hand, suggest the need for a study of the time-dependent large-scale structure of the oceans. In this paper, the planetary geostrophic equations are used to compute the evolution of large thermal anomalies with a view toward understanding the variability in the general circulation caused by water mass formation events. The evolution of a thermal anomaly is considered in the absence of wind forcing. In this case, the planetary geostrophic equations can be reduced to a first-order equations, the Planetary Geostrophic Wave Equation (PGWE). Arbitrary initial conditions governed by the PGWE tend to steepen and, under an assumed diffusive closure, from shock waves. The evolution of an initially columnar eddy is obtained, and four different phases of shock propagation are identified. The implications for heat transport, potential vorticity transport and thermocline ventilation are discussed.
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contributor author | Dewar, William K. | |
date accessioned | 2017-06-09T14:48:20Z | |
date available | 2017-06-09T14:48:20Z | |
date copyright | 1987/04/01 | |
date issued | 1987 | |
identifier issn | 0022-3670 | |
identifier other | ams-27157.pdf | |
identifier uri | http://onlinelibrary.yabesh.ir/handle/yetl/4164131 | |
description abstract | A number of general circulation models have recently been proposed that compute the steady-state structure of the general circulation. Observation of 18°C water formation, on the other hand, suggest the need for a study of the time-dependent large-scale structure of the oceans. In this paper, the planetary geostrophic equations are used to compute the evolution of large thermal anomalies with a view toward understanding the variability in the general circulation caused by water mass formation events. The evolution of a thermal anomaly is considered in the absence of wind forcing. In this case, the planetary geostrophic equations can be reduced to a first-order equations, the Planetary Geostrophic Wave Equation (PGWE). Arbitrary initial conditions governed by the PGWE tend to steepen and, under an assumed diffusive closure, from shock waves. The evolution of an initially columnar eddy is obtained, and four different phases of shock propagation are identified. The implications for heat transport, potential vorticity transport and thermocline ventilation are discussed. | |
publisher | American Meteorological Society | |
title | Planetary Shock Waves | |
type | Journal Paper | |
journal volume | 17 | |
journal issue | 4 | |
journal title | Journal of Physical Oceanography | |
identifier doi | 10.1175/1520-0485(1987)017<0470:PSW>2.0.CO;2 | |
journal fristpage | 470 | |
journal lastpage | 482 | |
tree | Journal of Physical Oceanography:;1987:;Volume( 017 ):;issue: 004 | |
contenttype | Fulltext |