Structure, variability, and dynamics of the West Greenland Boundary Current System

dc.contributor.advisor Pickart, Robert S.
dc.contributor.author Pacini, Astrid
dc.date.accessioned 2021-12-29T18:19:21Z
dc.date.available 2021-12-29T18:19:21Z
dc.date.issued 2022-02
dc.description Submitted in partial fulfillment of the requirements for the degree of Doctor of Philosophy at the Massachusetts Institute of Technology and the Woods Hole Oceanographic Institution February 2022. en_US
dc.description.abstract The ventilation of intermediate waters in the Labrador Sea has important implications for the strength of the Atlantic Meridional Overturning Circulation. Boundary current-interior interactions regulate the exchange of properties between the slope and the basin, which in turn regulates the magnitude of interior convection and the export of ventilated waters from the subpolar gyre. This thesis characterizes theWest Greenland Boundary Current System near Cape Farewell across a range of spatio-temporal scales. The boundary current system is composed of three velocity cores: (1) the West Greenland Coastal Current (WGCC), transporting Greenland and Arctic meltwaters on the shelf; (2) the West Greenland Current (WGC), which advects warm, saline Atlantic-origin water at depth, meltwaters at the surface, and newly-ventilated Labrador Sea Water (LSW); and (3) the Deep Western Boundary Current, which carries dense overflow waters ventilated in the Nordic Seas. The seasonal presence of the LSW and Atlantic-origin water are dictated by air-sea buoyancy forcing, while the seasonality of the WGCC is governed by remote wind forcing and the propagation of coastally trapped waves from East Greenland. Using mooring data and hydrographic surveys, we demonstrate mid-depth intensified cyclones generated at Denmark Strait are found offshore of the WGC and enhance the overflow water transport at synoptic timescales. Using mooring, hydrographic, and satellite data, we demonstrate that the WGC undergoes extensive meandering due to baroclinic instability that is enhanced in winter due to LSW formation adjacent to the current. This leads to the production of small-scale, anticyclonic eddies that can account for the entirety of wintertime heat loss within the Labrador Sea. The meanders are shown to trigger the formation of Irminger Rings downstream. Using mooring, hydrographic, atmospheric, and Lagrangian data, and a mixing model, we find that strong atmospheric storms known as forward tip jets cause upwelling at the shelfbreak that triggers offshore export of freshwater. This freshwater flux can explain the observed lack of ventilation in the eastern Labrador Sea. Together, this thesis documents previously unobserved interannual, seasonal, and synoptic-scale variability and dynamics within the West Greenland boundary current system that must be accounted for in future modeling. en_US
dc.description.sponsorship The work in this dissertation was funded by the National Science Foundation grants OCE-1259618 and OCE-1756361. en_US
dc.identifier.citation Pacini, A. (2022). Structure, variability, and dynamics of the West Greenland Boundary Current System [Doctoral thesis, Massachusetts Institute of Technology and Woods Hole Oceanographic Institution]. Woods Hole Open Access Server. https://doi.org/10.1575/1912/27886
dc.identifier.doi 10.1575/1912/27886
dc.identifier.uri https://hdl.handle.net/1912/27886
dc.language.iso en_US en_US
dc.publisher Massachusetts Institute of Technology and Woods Hole Oceanographic Institution en_US
dc.relation.ispartofseries WHOI Theses en_US
dc.subject Boundary current dynamics en_US
dc.subject Labrador sea water formation en_US
dc.subject Eddies en_US
dc.title Structure, variability, and dynamics of the West Greenland Boundary Current System en_US
dc.type Thesis en_US
dspace.entity.type Publication
relation.isAuthorOfPublication 6d5a33c5-1393-42ef-af52-54bc964b2c53
relation.isAuthorOfPublication.latestForDiscovery 6d5a33c5-1393-42ef-af52-54bc964b2c53
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