Dissipation and bathymetric sensitivities in an unstructured mesh global tidal model

The mechanisms and geographic distribution of global tidal dissipation in barotropic tidal models are examined using a high resolution unstructured mesh finite element model. Mesh resolution varies between 2 and 25 km and is especially focused on inner shelves and steep bathymetric gradients. Tidal response sensitivities to bathymetric changes are examined to put into context response sensitivities to frictional processes. We confirm that the Ronne Ice Shelf dramatically affects Atlantic tides but also find that bathymetry in the Hudson Bay system is a critical control. We follow a sequential frictional parameter optimization process and use TPXO9 data-assimilated tidal elevations as a reference solution. From simulated velocities and depths, dissipation within the global model is estimated and allows us to pinpoint dissipation at high resolution. Boundary layer dissipation is extremely focused with 1.4% of the ocean accounting for 90% of the total. Internal tide friction is much more distributed with 16.7% of the ocean accounting for 90% of the total. Often highly regional dissipation can impact basin-scale and even ocean wide tides. Optimized boundary layer friction parameters correlate very well with the physical characteristics of the locality with high friction factors associated with energetic tidal regions, deep ocean island chains, and ice covered areas. Global complex M-2 tide errors are 1.94 cm in deep waters. Total global boundary layer and internal tide dissipation are estimated, respectively, at 1.83 and 1.49 TW. This continues the trend in the literature toward attributing more dissipation to internal tides.

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Related Dataset #1 : An update to Greenland and Antarctic ice sheet topography, cavity geometry, and global bathymetry (RTopo-2.0.4)

Related Dataset #2 : The GEBCO_2019 Grid - a continuous terrain model of the global oceans and land.

Related Other #1 : Data Supporting Dissipation and Bathymetric Sensitivities in an Unstructured Mesh Global Tidal Model

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Author Blakely, C. P.
Ling, G.
Pringle, W. J.
Contreras, M. T.
Wirasaet, D.
Westerink, J. J.
Moghimi, Saeed
Seroka, G.
Shi, L.
Myers, E.
Owensby, M.
Massey, C.
Publisher UCAR/NCAR - Library
Publication Date 2022-05-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2025-07-11T16:03:58.621924
Metadata Record Identifier edu.ucar.opensky::articles:25416
Metadata Language eng; USA
Suggested Citation Blakely, C. P., Ling, G., Pringle, W. J., Contreras, M. T., Wirasaet, D., Westerink, J. J., Moghimi, Saeed, Seroka, G., Shi, L., Myers, E., Owensby, M., Massey, C.. (2022). Dissipation and bathymetric sensitivities in an unstructured mesh global tidal model. UCAR/NCAR - Library. https://n2t.org/ark:/85065/d7j67mns. Accessed 30 July 2025.

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