    {"instituterec":{"StatusID":1,"InsID":12031,"StandardName":"Earth System Science","OrigName":null,"OrigNameLangCode":null,"OrigNameLangID":null,"Acronym":"VUB-ESSc","HigherInsID":2956,"VlizCoreFlag":1,"AdrID":null,"Line1":null,"Line2":null,"Line3":null,"Line4":null,"Phone":null,"GSM":null,"Email":null,"Lat":null,"Lon":null,"OrigNameLang":null,"OrigNameLangNL":null,"AbstractEnglish":null,"AbstractOtherLang":null,"AbstractLangCode":null,"AbstractLangID":null,"AbstractLang":null,"AbstractLangNL":null,"SuccessorOfInsID":null,"DateLastModified":{"date":"2024-06-04 01:34:19.073000","timezone_type":1,"timezone":"+00:00"},"PrevIns":null,"PrevAcro":null,"PublicFlag":1,"CheckedFlag":0,"ParID":2956,"InstituteType":null,"EnvName":null,"ISO3166":null,"LevelName":null,"ND":"2012-01-20","UD":"2012-01-20","EncAddress":""},"parent":{"PublicFlag":1,"InsID":2956,"OrigNameLangCode":"nl","OrigNameLangID":41,"FullStandardName":"Vrije Universiteit Brussel","FullOrigName":null,"Acronym":"VUB"},"institutes":null,"references":[{"BRefID":391430,"RR":"<b>Seroussi, H.; Verjans, V.; Nowicki, S.; Payne, A.J.; Goelzer, H.; Lipscomb, W.H.; Abe-Ouchi, A.; Agosta, C.; Albrecht, T.; Asay-Davis, X.; Barthel, A.; Calov, R.; Cullather, R.; Dumas, C.; Galton-Fenzi, B.K.; Gladstone, R.; Golledge, N.R.; Gregory, J.M.; Greve, R.; Hattermann, T.; Hoffman, M.J.; Humbert, A.; Huybrechts, P.; Jourdain, N.C.; Kleiner, T.; Larour, E.; Leguy, G.R.; Lowry, D.P.; Little, C.M.; Morlighem, M.; Pattyn, F.; Pelle, T.; Price, S.F.; Quiquet, A.; Reese, R.; Schlegel, N.J.; Shepherd, A.; Simon, E.; Smith, R.S.; Straneo, F.; Sun, S.A.; Trusel, L.D.; Van Breedam, J.; Van Katwyk, P.; van de Wal, R.S.W.; Winkelmann, R.; Zhao, C.; Zhang, T.; Zwinger, T.</b> (2023). Insights into the vulnerability of Antarctic glaciers from the ISMIP6 ice sheet model ensemble and associated uncertainty. <i>Cryosphere 17(12)</i>: 5197-5217. <a href=\"https://dx.doi.org/10.5194/tc-17-5197-2023\" target=\"_blank\">https://dx.doi.org/10.5194/tc-17-5197-2023</a>","PeerRev":1},{"BRefID":382889,"RR":"<b>Shao, Z.B.; Xu, Y.C.; Wang, H.; Luo, W.C.; Wang, L.C.; Huang, Y.H.; Agawin, N.S.R.; Ahmed, A.; Benavides, M.; Bentzon-Tilia, M.; Berman-Frank, I.; Berthelot, H.; Biegala, I.C.; Bif, M.B.; Bode, A.; Bonnet, S.; Bronk, D.A.; Brown, M.V.; Campbell, L.; Capone, D.G.; Carpenter, E.J.; Cassar, N.; Chang, B.X.; Chappell, D.; Chen, Y.L.L.; Church, M.J.; Cornejo-Castillo, F.M.; Detoni, A.M.S.; Doney, S.C.; Dupouy, C.; Estrada, M.; Fernandez, C.; Fernandez-Castro, B.; Fonseca-Batista, D.; Foster, R.A.; Furuya, K.; Garcia, N.; Goto, K.; Gago, J.; Gradoville, M.R.; Hamersley, M.R.; Henke, B.A.; Horstmann, C.; Jayakumar, A.; Jiang, Z.B.; Kao, S.J.; Karl, D.M.; Kittu, L.R.; Knapp, A.N.; Kumar, S.; LaRoche, J.; Liu, H.B.; Liu, J.X.; Lory, C.; Loscher, C.R.; Maranon, E.; Messer, L.F.; Mills, M.M.; Mohr, W.; Moisander, P.H.; Mahaffey, C.; Moore, R.; Mourino-Carballido, B.; Mulholland, M.R.; Nakaoka, S.; Needoba, J.A.; Raes, E.J.; Rahav, E.; Ramirez-Cardenas, T.; Reeder, C.F.; Riemann, L.; Riou, V.; Robidart, J.C.; Sarma, V.V.S.S.; Sato, T.; Saxena, H.; Selden, C.; Seymour, J.R.; Shi, D.L.; Shiozaki, T.; Singh, A.; Sipler, R.E.; Sun, J.; Suzuki, K.; Takahashi, K.; Tan, Y.H.; Tang, W.Y.; Tremblay, J.??.; Turk-Kubo, K.; Wen, Z.Z.; White, A.E.; Wilson, S.T.; Yoshida, T.; Zehr, J.P.; Zhang, R.; Zhang, Y.; Luo, Y.W.</b> (2023). Global oceanic diazotroph database version 2 and elevated estimate of globaloceanic N<sub>2</sub> fixation. <i>ESSD 15(8)</i>: 3673-3709. <a href=\"https://dx.doi.org/10.5194/essd-15-3673-2023\" target=\"_blank\">https://dx.doi.org/10.5194/essd-15-3673-2023</a>","PeerRev":1},{"BRefID":391425,"RR":"<b>Van Breedam, J.; Huybrechts, P.; Crucifix, M.</b> (2023). Hysteresis and orbital pacing of the early Cenozoic Antarctic ice sheet. <i>Clim. Past 19(12)</i>: 2551-2568. <a href=\"https://dx.doi.org/10.5194/cp-19-2551-2023\" target=\"_blank\">https://dx.doi.org/10.5194/cp-19-2551-2023</a>","PeerRev":1},{"BRefID":352785,"RR":"<b>Pelletier, C.; Fichefet, T.; Goosse, H.; Haubner, K.; Helsen, S.; Huot, P.-V.; Kittel, C.; Klein, F.; Le Clec'h, S.; van Lipzig, N.P.M.; Marchi, S.; Massonnet, F.; Mathiot, P.; Moravveji, E.; Moreno-Chamarro, E.; Ortega, P.; Pattyn, F.; Souverijns, N.; Van Achter, G.; Vanden Broucke, S.; Vanhulle, A.; Verfaillie, D.; Zipf, L.</b> (2022). PARASO, a circum-Antarctic fully coupled ice-sheet-ocean-sea-ice-atmosphere-land model involving f.ETISh1.7, NEMO3.6, LIM3.6, COSM05.0 and CLM4.5. <i>Geosci. Model Dev. 15(2)</i>: 553-594. <a href=\"https://dx.doi.org/10.5194/gmd-15-553-2022\" target=\"_blank\">https://dx.doi.org/10.5194/gmd-15-553-2022</a>","PeerRev":1},{"BRefID":355847,"RR":"<b>Van Breedam, J.; Huybrechts, P.; Crucifix, M.</b> (2022). Modelling evidence for late Eocene Antarctic glaciations. <i>Earth Planet. Sci. 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Projected land ice contributions to twenty-first-century sea level rise. <i>Nature (Lond.) 593(7857)</i>: 74-82. <a href=\"https://hdl.handle.net/10.1038/s41586-021-03302-y\" target=\"_blank\">https://hdl.handle.net/10.1038/s41586-021-03302-y</a>","PeerRev":1},{"BRefID":353275,"RR":"<b>Payne, A.J.; Nowicki, S.; Abe-Ouchi, A.; Agosta, C.; Alexander, P.; Albrecht, T.; Asay-Davis, X.; Aschwanden, A.; Barthel, A.; Bracegirdle, T.J.; Calov, R.; Chambers, C.; Choi, Y.; Cullather, R.; Cuzzone, J.; Dumas, C.; Edwards, T.L.; Felikson, D.; Fettweis, X.; Galton-Fenzi, B.K.; Goelzer, H.; Gladstone, R.; Golledge, N.R.; Gregory, J.M.; Greve, R.; Hattermann, T.; Hoffman, M.J.; Humbert, A.; Huybrechts, P.; Jourdain, N.C.; Kleiner, T.; Kuipers Munneke, P.; Larour, E.; Le Clec'h, S.; Lee, V.; Leguy, G.; Lipscomb, W.H.; Little, C.M.; Lowry, D.P.; Morlighem, M.; Nias, I.; Pattyn, F.; Pelle, T.; Price, S.F.; Quiquet, A.; Reese, R.; Rückamp, M.; Schlegel, N.-J.; Seroussi, H.; Shepherd, A.; Simon, E.; Slater, D.; Smith, R.S.; Straneo, F.; Sun, S.; Tarasov, L.; Trusel, L.D.; Van Breedam, J.; van de Wal, R.; van den Broeke, M.; Winkelmann, R.; Zhao, C.; Zhang, T.; Zwinger, T.</b> (2021). Future sea level change under coupled model intercomparison project phase 5 and phase 6 scenarios from the Greenland and Antarctic ice sheets. <i>Geophys. Res. Lett. 48(16)</i>: e2020GL091741. <a href=\"https://dx.doi.org/10.1029/2020GL091741\" target=\"_blank\">https://dx.doi.org/10.1029/2020GL091741</a>","PeerRev":1},{"BRefID":355809,"RR":"<b>Van Breedam, J.; Huybrechts, P.; Crucifix, M.</b> (2021). A Gaussian process emulator for simulating ice sheet–climate interactions on a multi-million-year timescale: CLISEMv1.0. <i>Geosci. 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GrSMBMIP: intercomparison of the modelled 1980–2012 surface mass balance over the Greenland Ice Sheet. <i>Cryosphere 14(11)</i>: 3935-3958. <a href=\"https://dx.doi.org/10.5194/tc-14-3935-2020\" target=\"_blank\">https://dx.doi.org/10.5194/tc-14-3935-2020</a>","PeerRev":1},{"BRefID":337667,"RR":"<b>Goelzer, H.; Nowicki, S.; Payne, A.; Larour, E.; Seroussi, H.; Lipscomb, W.H.; Gregory, J.; Abe-Ouchi, A.; Shepherd, A.; Simon, E.; Agosta, C.; Alexander, P.; Aschwanden, A.; Barthel, A.; Calov, R.; Chambers, C.R.; Choi, Y.; Cuzzone, J.; Dumas, C.; Edwards, T.; Felikson, D.; Fettweis, X.; Golledge, N.R.; Greve, R.; Humbert, A.; Huybrechts, P.; Le Clec'h, S.; Lee, V.; Leguy, G.; Little, C.; Lowry, D.P.; Morlighem, M.; Nias, I.; Quiquet, A.; Rückamp, M.; Schlegel, N.-J.; Slater, D.A.; Smith, R.S.; Straneo, F.; Tarasov, L.; van de Wal, R.; van den Broeke, M.</b> (2020). The future sea-level contribution of the Greenland ice sheet: a multi-model ensemble study of ISMIP6. <i>Cryosphere 14(9)</i>: 3071-3096. <a href=\"https://hdl.handle.net/10.5194/tc-14-3071-2020\" target=\"_blank\">https://hdl.handle.net/10.5194/tc-14-3071-2020</a>","PeerRev":1},{"BRefID":322728,"RR":"<b>Levermann, A.; Winkelmann, R.; Albrecht, T.; Goelzer, H.; Golledge, N.R.; Greve, R.; Huybrechts, P.; Jordan, J.; Leguy, G.; Martin, D.; Morlighem, M.; Pattyn, F.; Pollard, D.; Quiquet, A.; Rodehacke, C.; Seroussi, H.; Sutter, J.; Zhang, T.; Van Breedam, J.; Calov, R.; DeConto, R.; Dumas, C.; Garbe, J.; Gudmundsson, G.H.; Hoffman, M.J.; Humbert, A.; Kleiner, T.; Lipscomb, W.H.; Meinshausen, M.; Ng, E.; Nowicki, S.M.J.; Perego, M.; Price, S.F.; Saito, F.; Schlegel, N.-J.; Sun, S.; van de Wal, R.S.W</b> (2020). Projecting Antarctica's contribution to future sea level rise from basal ice shelf melt using linear response functions of 16 ice sheet models (LARMIP-2). <i>Earth System Dynamics 11(1)</i>: 35-76. <a href=\"https://dx.doi.org/10.5194/esd-11-35-2020\" target=\"_blank\">https://dx.doi.org/10.5194/esd-11-35-2020</a>","PeerRev":1},{"BRefID":337666,"RR":"<b>Seroussi, H.; Nowicki, S.; Payne, A.J.; Goelzer, H.; Lipscomb, W.H.; Abe-Ouchi, A.; Agosta, C.; Albrecht, T.; Asay-Davis, X.; Barthel, A.; Calov, R.; Cullather, R.; Dumas, C.; Galton-Fenzi, B.K.; Gladstone, R.; Golledge, N.R.; Gregory, J.M.; Greve, R.; Hattermann, T.; Hoffman, M.J.; Humbert, A.; Huybrechts, P.; Jourdain, N.C.; Kleiner, T.; Larour, E.; Leguy, G.R.; Lowry, D.P.; Little, C.M.; Morlighem, M.; Pattyn, F.; Pelle, T.; Price, S.F.; Quiquet, A.; Reese, R.; Schlegel, N.-J.; Shepherd, A.; Simon, E.; Smith, R.S.; Straneo, F.; Sun, S.; Trusel, L.D.; Van Breedam, J.; van de Wal, R.S.W; Winkelmann, R.; Zhao, C.; Zhang, T.; Zwinger, T.</b> (2020). ISMIP6 Antarctica: a multi-model ensemble of the Antarctic ice sheet evolution over the 21st century. <i>Cryosphere 14(9)</i>: 3033-3070. <a href=\"https://hdl.handle.net/10.5194/tc-14-3033-2020\" target=\"_blank\">https://hdl.handle.net/10.5194/tc-14-3033-2020</a>","PeerRev":1},{"BRefID":337561,"RR":"<b>Van Breedam, J.; Goelzer, H.; Huybrechts, P.</b> (2020). Semi-equilibrated global sea-level change projections tor the next 10 000 years. <i>Earth System Dynamics 11(4)</i>: 953-976. <a href=\"https://hdl.handle.net/10.5194/esd-11-953-2020\" target=\"_blank\">https://hdl.handle.net/10.5194/esd-11-953-2020</a>","PeerRev":1},{"BRefID":353704,"RR":"<b>Le Clec'h, S.; Quiquet, A.; Charbit, S.; Dumas, C.; Kageyama, M.; Ritz, C.</b> (2019). A rapidly converging initialisation method to simulate the present-day Greenland ice sheet using the GRISLI ice sheet model (version 1.3). <i>Geosci. 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Eemian Greenland ice sheet simulated with a higher-order model shows strong sensitivity to surface mass balance forcing. <i>Cryosphere 13(8)</i>: 2133-2148. <a href=\"https://hdl.handle.net/10.5194/tc-13-2133-2019\" target=\"_blank\">https://hdl.handle.net/10.5194/tc-13-2133-2019</a>","PeerRev":1},{"BRefID":310389,"RR":"<b>Roukaerts, A.; Nomura, D.; Deman, F.; Hattori, H.; Dehairs, F.; Fripiat, F.</b> (2019). 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