A "cold path" for Gulf Stream - troposphere connection

The mechanism by which the Gulf Stream sea surface temperature (SST) front anchors a band of precipitation on its warm edge is still a matter of debate and little is known about how synoptic activity contributes to the mean state. In the present study, the influence of the SST front on precipitation...

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Autores principales: Vanniere, B, Czaja, A, Dacre, H, Woollings, T
Formato: Journal article
Publicado: American Meteorological Society 2017
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author Vanniere, B
Czaja, A
Dacre, H
Woollings, T
author_facet Vanniere, B
Czaja, A
Dacre, H
Woollings, T
author_sort Vanniere, B
collection OXFORD
description The mechanism by which the Gulf Stream sea surface temperature (SST) front anchors a band of precipitation on its warm edge is still a matter of debate and little is known about how synoptic activity contributes to the mean state. In the present study, the influence of the SST front on precipitation is investigated during the course of a single extratropical cyclone using a regional configuration of the Met Office Unified Model. The comparison of a control run with a simulation in which SST gradients were smoothed brought the following conclusions: a band of precipitation is reproduced for a single extratropical cyclone and the response to the SST gradient is dominated by a change of convective precipitation in the cold sector of the storm. Several climatological features described by previous studies, such as surface wind convergence on the warm edge or a meridional circulation cell across the SST front, are also reproduced at synoptic time scales in the cold sector. Based on these results, a simple boundary layer model is proposed to explain the convective and dynamical response to the SST gradient in the cold sector. In this model, cold and dry air parcels acquire more buoyancy over a sharp SST gradient and become more convectively unstable. The convection sets a pressure anomaly over the entire depth of the boundary layer which drives wind convergence. This case study offers a new pathway by which the SST gradient can anchor a climatological band of precipitation.
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spelling oxford-uuid:a761654e-4ef4-42d5-8e3b-58f9402d34ee2022-03-27T02:54:21ZA "cold path" for Gulf Stream - troposphere connectionJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:a761654e-4ef4-42d5-8e3b-58f9402d34eeSymplectic Elements at OxfordAmerican Meteorological Society2017Vanniere, BCzaja, ADacre, HWoollings, TThe mechanism by which the Gulf Stream sea surface temperature (SST) front anchors a band of precipitation on its warm edge is still a matter of debate and little is known about how synoptic activity contributes to the mean state. In the present study, the influence of the SST front on precipitation is investigated during the course of a single extratropical cyclone using a regional configuration of the Met Office Unified Model. The comparison of a control run with a simulation in which SST gradients were smoothed brought the following conclusions: a band of precipitation is reproduced for a single extratropical cyclone and the response to the SST gradient is dominated by a change of convective precipitation in the cold sector of the storm. Several climatological features described by previous studies, such as surface wind convergence on the warm edge or a meridional circulation cell across the SST front, are also reproduced at synoptic time scales in the cold sector. Based on these results, a simple boundary layer model is proposed to explain the convective and dynamical response to the SST gradient in the cold sector. In this model, cold and dry air parcels acquire more buoyancy over a sharp SST gradient and become more convectively unstable. The convection sets a pressure anomaly over the entire depth of the boundary layer which drives wind convergence. This case study offers a new pathway by which the SST gradient can anchor a climatological band of precipitation.
spellingShingle Vanniere, B
Czaja, A
Dacre, H
Woollings, T
A "cold path" for Gulf Stream - troposphere connection
title A "cold path" for Gulf Stream - troposphere connection
title_full A "cold path" for Gulf Stream - troposphere connection
title_fullStr A "cold path" for Gulf Stream - troposphere connection
title_full_unstemmed A "cold path" for Gulf Stream - troposphere connection
title_short A "cold path" for Gulf Stream - troposphere connection
title_sort cold path for gulf stream troposphere connection
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AT czajaa acoldpathforgulfstreamtroposphereconnection
AT dacreh acoldpathforgulfstreamtroposphereconnection
AT woollingst acoldpathforgulfstreamtroposphereconnection
AT vanniereb coldpathforgulfstreamtroposphereconnection
AT czajaa coldpathforgulfstreamtroposphereconnection
AT dacreh coldpathforgulfstreamtroposphereconnection
AT woollingst coldpathforgulfstreamtroposphereconnection