Articles | Volume 13, issue 8
https://doi.org/10.5194/essd-13-3869-2021
© Author(s) 2021. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
https://doi.org/10.5194/essd-13-3869-2021
© Author(s) 2021. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
EOT20: a global ocean tide model from multi-mission satellite altimetry
Michael G. Hart-Davis
CORRESPONDING AUTHOR
Deutsches Geodätisches Forschungsinstitut der Technischen Universität München (DGFI-TUM), Arcisstraße 21, 80333 Munich, Germany
Gaia Piccioni
Deutsches Geodätisches Forschungsinstitut der Technischen Universität München (DGFI-TUM), Arcisstraße 21, 80333 Munich, Germany
now at: Enel Global Trading S.p.A., Viale Regina Margherita 125, 00198 Rome, Italy
Denise Dettmering
Deutsches Geodätisches Forschungsinstitut der Technischen Universität München (DGFI-TUM), Arcisstraße 21, 80333 Munich, Germany
Christian Schwatke
Deutsches Geodätisches Forschungsinstitut der Technischen Universität München (DGFI-TUM), Arcisstraße 21, 80333 Munich, Germany
Marcello Passaro
Deutsches Geodätisches Forschungsinstitut der Technischen Universität München (DGFI-TUM), Arcisstraße 21, 80333 Munich, Germany
Florian Seitz
Deutsches Geodätisches Forschungsinstitut der Technischen Universität München (DGFI-TUM), Arcisstraße 21, 80333 Munich, Germany
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6 citations as recorded by crossref.
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- Towards Millimeter-Level Accuracy in GNSS-Based Space Geodesy: A Review of Error Budget for GNSS Precise Point Positioning X. Li et al. 10.1007/s10712-023-09785-w
- Modeling gravimetric signatures of third-degree ocean tides and their detection in superconducting gravimeter records R. Sulzbach et al. 10.1007/s00190-022-01609-w
- EOT20: a global ocean tide model from multi-mission satellite altimetry M. Hart-Davis et al. 10.5194/essd-13-3869-2021
- Ocean Circulation from Space R. Morrow et al. 10.1007/s10712-023-09778-9
Latest update: 20 Nov 2024
Short summary
Ocean tides are an extremely important process for a variety of oceanographic applications, particularly in understanding coastal sea-level rise. Tidal signals influence satellite altimetry estimations of the sea surface, which has resulted in the development of ocean tide models to account for such signals. The EOT20 ocean tide model has been developed at DGFI-TUM using residual analysis of satellite altimetry, with the focus on improving the estimation of ocean tides in the coastal region.
Ocean tides are an extremely important process for a variety of oceanographic applications,...
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