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Emulating long-term CMIP6 projections of sterodynamic sea-level change using a three-layer energy balance model. <i>Environ. Res. Lett. 20(8)</i>: 084034. <a href=\"https://dx.doi.org/10.1088/1748-9326/ade906\" target=\"_blank\">https://dx.doi.org/10.1088/1748-9326/ade906</a>","AutID":352617,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":435796,"RR":"<b>Nauels, A.; Nicholls, Z.; Möller, T.; Hermans, T.H.J.; Mengel, M.; Kloenne, U.; Smith, C.; Slangen, A.B.A.; Palmer, M.D.</b> (2025). Multi-century global and regional sea-level rise commitments from cumulative greenhouse gas emissions in the coming decades. <i>Nat. Clim. Chang. 15(11)</i>: 1198-1204. <a href=\"https://dx.doi.org/10.1038/s41558-025-02452-5\" target=\"_blank\">https://dx.doi.org/10.1038/s41558-025-02452-5</a>","AutID":559542,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":395186,"RR":"<b>Hermans, T.H.J.; Busecke, J.J.M.; Wahlund, T.M.; Malagon Santos, V.; Tadesse, M.G.; Jane, R.A.; Van de Wal, R.S.E.</b> (2024). projecting changes in the drivers of compound flooding in Europe using CMIP6 models. <i>Earth's Future 12(5)</i>: e2023EF004188. <a href=\"https://dx.doi.org/10.1029/2023ef004188\" target=\"_blank\">https://dx.doi.org/10.1029/2023ef004188</a>","AutID":352617,"MonDate":null,"AnaDate":2024,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":361825,"RR":"<b>Camargo, C.M.L.; Riva, R.E.M.; Hermans, T.H.J.; Schütt, E.M.; Marcos, M.; Hernández-Carrasco, I.; Slangen, A.B.A.</b> (2023). Regionalizing the sea-level budget with machine learning techniques. <i>Ocean Sci. 19</i>: 17-41. <a href=\"https://dx.doi.org/10.5194/os-19-17-2023\" target=\"_blank\">https://dx.doi.org/10.5194/os-19-17-2023</a>","AutID":352617,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":363583,"RR":"<b>Hermans, T.H.J.; Malagon Santos, V.; Katsman, C.A.; Jane, R.A.; Rasmussen, D.J.; Haasnoot, M.; Garner, G.G.; Kopp, R.E.; Oppenheimer, M.; Slangen, A.B.A.</b> (2023). The timing of decreasing coastal flood protection due to sea-level rise. <i>Nat. Clim. Chang. 13(4)</i>: 359-366. <a href=\"https://dx.doi.org/10.1038/s41558-023-01616-5\" target=\"_blank\">https://dx.doi.org/10.1038/s41558-023-01616-5</a>","AutID":352617,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":365669,"RR":"<b>Kopp, R.E.; Oppenheimer, M.; O’Reilly, J.L.; Drijfhout, S.; Edwards, T.L.; Fox-Kemper, B.; Garner, G.G.; Golledge, N.R.; Hermans, T.H.J.; Hewitt, H.T.; Horton, B.P.; Krinner, G.; Notz, D.; Nowicki, S.; Palmer, M.D.; Slangen, A.B.A.; Xiao, C.</b> (2023). Communicating future sea-level rise uncertainty and ambiguity to assessment users. <i>Nat. Clim. Chang. 13(7)</i>: 648-660. <a href=\"https://dx.doi.org/10.1038/s41558-023-01691-8\" target=\"_blank\">https://dx.doi.org/10.1038/s41558-023-01691-8</a>","AutID":352617,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":0},{"BRefID":365596,"RR":"<b>Malagon Santos, V.; Slangen, A.B.A.; Hermans, T.H.J.; Dangendorf, S.; Marcos, M.; Maher, N.</b> (2023). Improving statistical projections of ocean dynamic sea-level change using pattern recognition techniques. <i>Ocean Sci. 19(2)</i>: 499-515. <a href=\"https://dx.doi.org/10.5194/os-19-499-2023\" target=\"_blank\">https://dx.doi.org/10.5194/os-19-499-2023</a>","AutID":352617,"MonDate":null,"AnaDate":2023,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":356027,"RR":"<b>Camargo, C.M.L.; Riva, R.E.M.; Hermans, T.H.J.; Slangen, A.B.A.</b> (2022). Trends and uncertainties of mass-driven sea-level change in the satellite altimetry era. <i>Earth System Dynamics 13(3)</i>: 1351-1375. <a href=\"https://dx.doi.org/10.5194/esd-13-1351-2022\" target=\"_blank\">https://dx.doi.org/10.5194/esd-13-1351-2022</a>","AutID":352617,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":349364,"RR":"<b>Hermans, T.H.J.; Katsman, C.A.; Camargo, C.M.L.; Garner, G.G.; Kopp, R.E.; Slangen, A.B.A.</b> (2022). The effect of wind stress on seasonal sea-level change on the Northwestern European Shelf. <i>J. Clim. 35(6)</i>: 1745-1759. <a href=\"https://dx.doi.org/10.1175/jcli-d-21-0636.1\" target=\"_blank\">https://dx.doi.org/10.1175/jcli-d-21-0636.1</a>","AutID":352617,"MonDate":null,"AnaDate":2022,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":334833,"RR":"<b>Hermans, T.H.J.; Gregory, J.M.; Palmer, M.D.; Ringer, M.A.; Katsman, C.A.; Slangen, A.B.A.</b> (2021). Projecting global mean sea‐level change using CMIP6 models. <i>Geophys. Res. Lett. 48(5)</i>: e2020GL092064. <a href=\"https://doi.org/10.1029/2020gl092064\" target=\"_blank\">https://doi.org/10.1029/2020gl092064</a>","AutID":352617,"MonDate":null,"AnaDate":2021,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":329882,"RR":"<b>Camargo, C.M.L.; Riva, R.E.M.; Hermans, T.H.J.; Slangen, A.B.A.</b> (2020). Exploring sources of uncertainty in steric sea‐level change estimates. <i>JGR: Oceans 125(10)</i>: e2020JC016551. <a href=\"https://dx.doi.org/10.1029/2020jc016551\" target=\"_blank\">https://dx.doi.org/10.1029/2020jc016551</a>","AutID":352617,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":320983,"RR":"<b>Hermans, T.H.J.; Tinker, J.; Palmer, M.D.; Katsman, C.A.; Vermeersen, B.L.A.; Slangen, A.B.A.</b> (2020). Improving sea-level projections on the Northwestern European shelf using dynamical downscaling. <i>Clim. Dyn. 54</i>: 1987–2011. <a href=\"https://dx.doi.org/10.1007/s00382-019-05104-5\" target=\"_blank\">https://dx.doi.org/10.1007/s00382-019-05104-5</a>","AutID":352617,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":329874,"RR":"<b>Hermans, T.H.J.; Le Bars; Katsman, C.A.; Camargo; Gerkema, T.; Calafat, F.M.; Tinker, J.; Slangen, A.B.A.</b> (2020). Drivers of interannual sea‐level variability on the Northwestern European Shelf. <i>JGR: Oceans 125(10)</i>: e2020JC016325. <a href=\"https://dx.doi.org/10.1029/2020jc016325\" target=\"_blank\">https://dx.doi.org/10.1029/2020jc016325</a>","AutID":352617,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":329878,"RR":"<b>Tinker, J.; Palmer, M.D.; Copsey, D.; Howard, T.; Lowe, J.A.; Hermans, T.H.J.</b> (2020). Dynamical downscaling of unforced interannual sea-level variability in the North-West European shelf seas. <i>Clim. Dyn. 55(7-8)</i>: 2207-2236. <a href=\"https://dx.doi.org/10.1007/s00382-020-05378-0\" target=\"_blank\">https://dx.doi.org/10.1007/s00382-020-05378-0</a>","AutID":352617,"MonDate":null,"AnaDate":2020,"PeerRev":1,"outputType":"1_A1","OpenAcc":1},{"BRefID":302622,"RR":"<b>Hermans, T.H.J.; van der Wal, W.; Broerse, T.</b> (2018). Reversal of the direction of horizontal velocities induced by GIA as a function of mantle viscosity. <i>Geophys. Res. Lett. 45(18)</i>: 9597-9604. <a href=\"https://dx.doi.org/10.1029/2018gl078533\" target=\"_blank\">https://dx.doi.org/10.1029/2018gl078533</a>","AutID":352617,"MonDate":null,"AnaDate":2018,"PeerRev":1,"outputType":"1_A1","OpenAcc":1}],"PeerRevRef":[{"BRefID":437116,"RR":"<b>Hermans, T.H.J.; de Winter, R.; Storms, J.E.A.; Dunn, F.E.; Gelderloos, R.; Diermanse, F.; Haer, T.; Le Bars, D.; Haasnoot, M.; Huismans, Y.; Kreemers, L.M.; van der Linden, E.C.; Pearson, S.; Rietbroek, R.; Slangen, A.B.A.; Wijnberg, K.M.; Winter, G.; van de Wal, R.S.W.</b> (2025). An integrated view on the uncertainties of sea-level rise, hazards and impacts, and adaptation. <i>Cambridge Prisms: Extinction 3</i>: e13. <a href=\"https://dx.doi.org/10.1017/cft.2025.10003\" target=\"_blank\">https://dx.doi.org/10.1017/cft.2025.10003</a>","AutID":352617,"MonDate":null,"AnaDate":2025,"PeerRev":1,"outputType":"2_PeerRevRef","OpenAcc":1},{"BRefID":405684,"RR":"<b>Melet, A.; van de Wal, R.; Amores, A.; Arns, A.; Chaigneau, A.A.; Dinu, I.; Haigh, I.D.; Hermans, T.H.J.; Lionello, P.; Marcos, M.; Meier, H.E.M.; Meyssignac, B.; Palmer, M.D.; Reese, R.; Simpson, M.J.R.; Slangen, A.B.A.</b> (2024). Sea Level Rise in Europe: Observations and projections, <b><i>in</i></b>: van den Hurk, B. <i>et al.</i> <i>Sea level rise in Europe: 1st Assessment report of the knowledge hub on sea level rise. State of the Planet,</i> 3-slre1: pp. 1-60. <a href=\"https://dx.doi.org/10.5194/sp-3-slre1-4-2024\" target=\"_blank\">https://dx.doi.org/10.5194/sp-3-slre1-4-2024</a>","AutID":352617,"MonDate":null,"AnaDate":2024,"PeerRev":1,"outputType":"2_PeerRevRef","OpenAcc":1}],"Thesis":[{"BRefID":353349,"RR":"<b>Hermans, T.H.J.</b> (2022). Understanding sea-level change using global and regional models. PhD Thesis. Delft University of Technology: Delft. ISBN 978-94-6419-524-8. 172 pp. <a href=\"https://doi.org/10.4233/uuid:ad44006f-b50d-49b9-bf64-ee5cb7a55980\" target=\"_blank\">https://doi.org/10.4233/uuid:ad44006f-b50d-49b9-bf64-ee5cb7a55980</a>","AutID":352617,"MonDate":2022,"AnaDate":null,"PeerRev":0,"outputType":"5_Thesis","OpenAcc":1}],"Abstr":[{"BRefID":391040,"RR":"<b>Scheen, J.; Le Bars, D.; Keizer, I.J.; Hermans, T.H.J.; Tubbergen, S.J.C.; Wouters, B.; Lhermitte, S.</b> (2024). Projecting future sea-level change along the coast of the Netherlands with a regional ocean model, <b><i>in</i></b>: <i>EGU General Assembly 2024. Vienna, Austria & Online, 14-19 April 2024.</i> pp. EGU24-19023. <a href=\"https://dx.doi.org/10.5194/egusphere-egu24-19023\" target=\"_blank\">https://dx.doi.org/10.5194/egusphere-egu24-19023</a>","AutID":559542,"MonDate":null,"AnaDate":2024,"PeerRev":0,"outputType":"6_Abstr","OpenAcc":1}]},"urls":[{"URL":"https://orcid.org/0000-0002-0253-9291","externalID":"0000-0002-0253-9291","URLTypeCode":"ORCID","URLType":"ORCID"},{"URL":"www.nioz.nl/en/about/organisation/staff/tim-hermans","externalID":null,"URLTypeCode":null,"URLType":"Personal home page"}],"spcols":null,"thesterms":null,"taxterms":null,"pub":1,"newses":{"SesID":90894,"LoginName":"VLIZ2000\\ruthv","LoginID":79,"DD":"2018-12-06"},"updses":{"SesID":90894,"LoginName":"VLIZ2000\\ruthv","LoginID":79,"DD":"2018-12-06"},"urlmaps":[],"resmessage":"no id specified","complete":1}
