Dynamics of eddying abyssal mixing layers over sloping rough topography

dc.contributor.author Drake, Henri F.
dc.contributor.author Ruan, Xiaozhou
dc.contributor.author Callies, Joern
dc.contributor.author Ogden, Kelly A.
dc.contributor.author Thurnherr, Andreas M.
dc.contributor.author Ferrari, Raffaele
dc.date.accessioned 2023-02-21T18:02:48Z
dc.date.issued 2022-11-18
dc.description Author Posting. © American Meteorological Society, 2022. This article is posted here by permission of American Meteorological Society for personal use, not for redistribution. The definitive version was published in Journal of Physical Oceanography 52(12),(2022): 3199-3219, https://doi.org/10.1175/jpo-d-22-0009.1. en_US
dc.description.abstract The abyssal overturning circulation is thought to be primarily driven by small-scale turbulent mixing. Diagnosed water-mass transformations are dominated by rough topography “hotspots,” where the bottom enhancement of mixing causes the diffusive buoyancy flux to diverge, driving widespread downwelling in the interior—only to be overwhelmed by an even stronger upwelling in a thin bottom boundary layer (BBL). These water-mass transformations are significantly underestimated by one-dimensional (1D) sloping boundary layer solutions, suggesting the importance of three-dimensional physics. Here, we use a hierarchy of models to generalize this 1D boundary layer approach to three-dimensional eddying flows over realistically rough topography. When applied to the Mid-Atlantic Ridge in the Brazil Basin, the idealized simulation results are roughly consistent with available observations. Integral buoyancy budgets isolate the physical processes that contribute to realistically strong BBL upwelling. The downward diffusion of buoyancy is primarily balanced by upwelling along the sloping canyon sidewalls and the surrounding abyssal hills. These flows are strengthened by the restratifying effects of submesoscale baroclinic eddies and by the blocking of along-ridge thermal wind within the canyon. Major topographic sills block along-thalweg flows from restratifying the canyon trough, resulting in the continual erosion of the trough’s stratification. We propose simple modifications to the 1D boundary layer model that approximate each of these three-dimensional effects. These results provide local dynamical insights into mixing-driven abyssal overturning, but a complete theory will also require the nonlocal coupling to the basin-scale circulation. en_US
dc.description.embargo 2023-05-18 en_US
dc.description.sponsorship We acknowledge funding support from National Science Foundation Awards 1536515, 1736109, and 2149080. This material is based upon work supported by the National Science Foundation Graduate Research Fellowship Program under Grant 174530. en_US
dc.embargo.liftdate 2023-05-18
dc.identifier.citation Drake, H., Ruan, X., Callies, J., Ogden, K., Thurnherr, A., & Ferrari, R. (2022). Dynamics of eddying abyssal mixing layers over sloping rough topography. Journal of Physical Oceanography, 52(12), 3199-3219. en_US
dc.identifier.doi 10.1175/jpo-d-22-0009.1
dc.identifier.uri https://hdl.handle.net/1912/29693
dc.publisher American Meteorological Society en_US
dc.relation.ispartof https://hdl.handle.net/1912/29739
dc.relation.uri https://doi.org/10.1175/jpo-d-22-0009.1
dc.subject Abyssal circulation en_US
dc.subject Diapycnal mixing en_US
dc.subject Meridional overturning circulation en_US
dc.subject Topographic effects en_US
dc.subject Upwelling/downwelling en_US
dc.subject Bottom currents/bottom water en_US
dc.title Dynamics of eddying abyssal mixing layers over sloping rough topography en_US
dc.type Article en_US
dspace.entity.type Publication
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