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BibEntryCargo > Journal : Journal of Coastal Research or The Cryosphere & Volume : 5 or 8 or 18

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Albrecht, T.; Levermann, A.; (1) · Albrecht, T.; Martin, M.; Haseloff, M.; Winkelmann, R.; Levermann, A.; (1) · Albrecht, Torsten; Bagge, Meike; Klemann, Volker; (1) · Bellaire, S.; Jamieson, J. B.; Fierz, C.; (1) · Bett, D.T.; Bradley, A.T.; Williams, C.R.; Holland, P.R.; Arthern, R.J.; Goldberg, D.N.; (1) · Billecocq, Paul; Langlois, Alexandre; Montpetit, Benoit; (1) · Caro, Alexis; Condom, Thomas; Rabatel, Antoine; Champollion, Nicolas; García, Nicolás; Saavedra, Freddy; (1) · Cuzzone, Joshua; Romero, Matias; Marcott, Shaun A.; (1) · Daanen, R. P.; Ingeman-Nielsen, T.; Marchenko, S. S.; Romanovsky, V. E.; Foged, N.; Stendel, M.; Christensen, J. H.; Hornbech Svendsen, K.; (1) · Delhasse, Alison; Beckmann, Johanna; Kittel, Christoph; Fettweis, Xavier; (1) · Draeger, Christina; Radić, Valentina; White, Rachel H.; Tessema, Mekdes Ayalew; (1) · Durán Moro, Marina; Sperrevik, Ann Kristin; Lavergne, Thomas; Bertino, Laurent; Gusdal, Yvonne; Iversen, Silje Christine; Rusin, Jozef; (2) · Edwards, T. L.; Fettweis, X.; Gagliardini, O.; Gillet-Chaulet, F.; Goelzer, H.; Gregory, J. M.; Hoffman, M.; Huybrechts, P.; Payne, A. J.; Perego, M.; Price, S.; Quiquet, A.; Ritz, C.; (1) · Larour, E.; Utke, J.; Csatho, B.; Schenk, A.; Seroussi, H.; Morlighem, M.; Rignot, E.; Schlegel, N.; Khazendar, A.; (1) · Martin, M. A.; Winkelmann, R.; Haseloff, M.; Albrecht, T.; Bueler, E.; Khroulev, C.; Levermann, A.; (1) · Mott, R.; Egli, L.; Grünewald, T.; Dawes, N.; Manes, C.; Bavay, M.; Lehning, M.; (1) · Petty, A. A.; Holland, P. R.; Feltham, D. L.; (2) · Plante, Mathieu; Lemieux, Jean-François; Tremblay, L. Bruno; Tivy, Adrienne; Angnatok, Joey; Roy, François; Smith, Gregory; Dupont, Frédéric; Turner, Adrian K.; (1) · Poschlod, Benjamin; Daloz, Anne Sophie; (1) · Robinson, A.; Goelzer, H.; (1) · Rogozhina, I.; Rau, D.; (1) · Seguinot, J.; Khroulev, C.; Rogozhina, I.; Stroeven, A. P.; Zhang, Q.; (1) · Seroussi, H.; Morlighem, M.; Larour, E.; Rignot, E.; Khazendar, A.; (1) · Sun, Shan; Solomon, Amy; (1) · Sørensen, L. S.; Simonsen, S. B.; Nielsen, K.; Lucas-Picher, P.; Spada, G.; Adalgeirsdottir, G.; Forsberg, R.; Hvidberg, C. S.; (1) · Voordendag, Annelies; Goger, Brigitta; Prinz, Rainer; Sauter, Tobias; Mölg, Thomas; Saigger, Manuel; Kaser, Georg; (1) · Wever, N.; Fierz, C.; Mitterer, C.; Hirashima, H.; Lehning, M.; (1) · Winkelmann, R.; Martin, M. A.; Haseloff, M.; Albrecht, T.; Bueler, E.; Khroulev, C.; Levermann, A.; (1) · Wirths, Christian; Stocker, Thomas F.; Sutter, Johannes C. R.; (1) · Zhou, Xu; Wang, Binbin; Ma, Xiaogang; La, Zhu; Yang, Kun; (1)
Title:
A novel framework to investigate wind-driven snow redistribution over an Alpine glacier: combination of high-resolution terrestrial laser scans and large-eddy simulations (1) · Assimilation of satellite swaths versus daily means of sea ice concentration in a regional coupled ocean–sea ice model (2) · Coupled ice–ocean interactions during future retreat of West Antarctic ice streams in the Amundsen Sea sector (1) · Coupling MAR (Modèle Atmosphérique Régional) with PISM (Parallel Ice Sheet Model) mitigates the positive melt–elevation feedback (1) · Effect of uncertainty in surface mass balance–elevation feedback on projections of the future sea level contribution of the Greenland ice sheet (1) · Evaluation of reanalysis data and dynamical downscaling for surface energy balance modeling at mountain glaciers in western Canada (1) · Feedback mechanisms controlling Antarctic glacial-cycle dynamics simulated with a coupled ice sheet–solid Earth model (1) · Forcing the snow-cover model SNOWPACK with forecasted weather data (1) · Fracture-induced softening for large-scale ice dynamics (1) · Hydrological response of Andean catchments to recent glacier mass loss (1) · Hydrostatic grounding line parameterization in ice sheet models (1) · Inferred basal friction and surface mass balance of the Northeast Greenland Ice Stream using data assimilation of ICESat (Ice Cloud and land Elevation Satellite) surface altimetry and ISSM (Ice Sheet System Model) (1) · Mass balance of the Greenland ice sheet (2003–2008) from ICESat data – the impact of interpolation, sampling and firn density (1) · Micrometeorological processes driving snow ablation in an Alpine catchment (1) · Modeling the timing of Patagonian Ice Sheet retreat in the Chilean Lake District from 22–10 ka (1) · Parameterization for subgrid-scale motion of ice-shelf calving fronts (1) · Permafrost degradation risk zone assessment using simulation models (1) · Sea ice and the ocean mixed layer over the Antarctic shelf seas (2) · Simulating lake ice phenology using a coupled atmosphere–lake model at Nam Co, a typical deep alpine lake on the Tibetan Plateau (1) · Snow depth in high-resolution regional climate model simulations over southern Germany – suitable for extremes and impact-related research? (1) · Solving Richards Equation for snow improves snowpack meltwater runoff estimations in detailed multi-layer snowpack model (1) · Subgridding high-resolution numerical weather forecast in the Canadian Selkirk mountain range for local snow modeling in a remote sensing perspective (1) · Suitability of the CICE sea ice model for seasonal prediction and positive impact of CryoSat-2 ice thickness initialization (1) · The Potsdam Parallel Ice Sheet Model (PISM-PIK) – Part 1: Model description (1) · The Potsdam Parallel Ice Sheet Model (PISM-PIK) – Part 2: Dynamic equilibrium simulation of the Antarctic ice sheet (1) · The effect of climate forcing on numerical simulations of the Cordilleran ice sheet at the Last Glacial Maximum (1) · The importance of insolation changes for paleo ice sheet modeling (1) · The influence of present-day regional surface mass balance uncertainties on the future evolution of the Antarctic Ice Sheet (1) · Using Icepack to reproduce ice mass balance buoy observations in landfast ice: improvements from the mushy-layer thermodynamics (1) · Vital role of daily temperature variability in surface mass balance parameterizations of the Greenland Ice Sheet (1)
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https://tc.copernicus.org/articles/18/1381/2024/ (1) · https://tc.copernicus.org/articles/18/1597/2024/ (2) · https://tc.copernicus.org/articles/18/1685/2024/ (1) · https://tc.copernicus.org/articles/18/17/2024/ (1) · https://tc.copernicus.org/articles/18/1959/2024/ (1) · https://tc.copernicus.org/articles/18/2487/2024/ (1) · https://tc.copernicus.org/articles/18/2653/2024/ (1) · https://tc.copernicus.org/articles/18/2765/2024/ (1) · https://tc.copernicus.org/articles/18/3033/2024/ (1) · https://tc.copernicus.org/articles/18/4233/2024/ (1) · https://tc.copernicus.org/articles/18/4435/2024/ (1) · https://tc.copernicus.org/articles/18/4589/2024/ (1) · https://tc.copernicus.org/articles/18/633/2024/ (1) · https://tc.copernicus.org/articles/18/849/2024/ (1) · https://tc.copernicus.org/articles/5/35/2011/ (1) · https://tc.copernicus.org/articles/8/1087/2014/ (1) · https://tc.copernicus.org/articles/8/587/2014/ (1) · https://tc.copernicus.org/articles/8/761/2014/ (1) · https://www.the-cryosphere.net/5/1043/2011/ (1) · https://www.the-cryosphere.net/5/1083/2011/ (1) · https://www.the-cryosphere.net/5/1115/2011/ (1) · https://www.the-cryosphere.net/5/173/2011/ (1) · https://www.the-cryosphere.net/5/715/2011/ (1) · https://www.the-cryosphere.net/5/727/2011/ (1) · https://www.the-cryosphere.net/8/1419/2014/ (1) · https://www.the-cryosphere.net/8/195/2014/ (1) · https://www.the-cryosphere.net/8/2075/2014/ (1) · https://www.the-cryosphere.net/8/2335/2014/ (1) · https://www.the-cryosphere.net/8/257/2014/ (1) · https://www.the-cryosphere.net/8/575/2014/ (1) · https://www.the-cryosphere.net/8/761/2014/ (1)
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