Design and results of the ice sheet model initialisation experiments initMIP-Greenland: an ISMIP6 intercomparison
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William H. Lipscomb | Joseph H. Kennedy | Angelika Humbert | Eric Larour | Fuyuki Saito | Fabien Gillet-Chaulet | Frank Pattyn | Jonathan Gregory | Mathieu Morlighem | Philippe Huybrechts | Helene Seroussi | Ralf Greve | Sainan Sun | Nicholas R. Golledge | Antony J. Payne | Ayako Abe-Ouchi | Olivier Gagliardini | Heiko Goelzer | Roderik van de Wal | Andy Aschwanden | Sophie Nowicki | Reinhard Calov | Andrew Shepherd | Victoria Lee | Martin Rückamp | Nicole Schlegel | Christian Rodehacke | Matthew Beckley | Tamsin Edwards | Sébastien Le clec’h | Florian A. Ziemen
[1] R. Greve,et al. Resolution of ice streams and outlet glaciers in large-scale simulations of the Greenland ice sheet , 2013, Annals of Glaciology.
[2] J. Oerlemans,et al. Coupling of climate models and ice sheet models by surface mass balance gradients: application to the Greenland Ice Sheet , 2012 .
[3] David Pollard,et al. Description of a hybrid ice sheet-shelf model, and application to Antarctica , 2012 .
[4] J. Box,et al. Decadal‐scale sensitivity of Northeast Greenland ice flow to errors in surface mass balance using ISSM , 2012 .
[5] U. Mikolajewicz,et al. Coupled simulations of Greenland Ice Sheet and climate change up to A.D. 2300 , 2015 .
[6] Ian M. Howat,et al. Greenland flow variability from ice-sheet-wide velocity mapping , 2010, Journal of Glaciology.
[7] Eric Rignot,et al. Continental scale, high order, high spatial resolution, ice sheet modeling using the Ice Sheet System Model (ISSM) , 2012 .
[8] Jean Utke,et al. An approach to computing discrete adjoints for MPI-parallelized models applied to Ice Sheet System Model 4.11 , 2016 .
[9] M. England,et al. Antarctic contribution to meltwater pulse 1A from reduced Southern Ocean overturning , 2014, Nature Communications.
[10] Ralf Greve,et al. Comparison of thermodynamics solvers in the polythermal ice sheet model SICOPOLIS , 2015, 1506.02364.
[11] Eric Rignot,et al. Insights into spatial sensitivities of ice mass response to environmental change from the SeaRISE ice sheet modeling project I: Antarctica , 2013 .
[12] Stephen L. Cornford,et al. Initialization of an ice-sheet model for present-day Greenland , 2015, Annals of Glaciology.
[13] B. Scheuchl,et al. Fast retreat of Zachariæ Isstrøm, northeast Greenland , 2015, Science.
[14] Xavier Fettweis,et al. Application of GRACE to the assessment of model-based estimates of monthly Greenland Ice Sheet mass balance (2003–2012) , 2016 .
[15] Guðfinna Aðalgeirsdóttir,et al. Hindcasting to measure ice sheet model sensitivity to initial states , 2012 .
[16] Fabien Gillet-Chaulet,et al. Comparison of adjoint and nudging methods to initialise ice sheet model basal conditions , 2016 .
[17] Ed Bueler,et al. An enthalpy formulation for glaciers and ice sheets , 2012, Journal of Glaciology.
[18] Carl E. Bøggild,et al. A new present-day temperature parameterization for Greenland , 2009, Journal of Glaciology.
[19] P. Huybrechts,et al. The EISMINT benchmarks for testing ice-sheet models , 1996, Annals of Glaciology.
[20] Alun Hubbard,et al. Benchmark experiments for higher-order and full-Stokes ice sheet models (ISMIP-HOM) , 2008 .
[21] Ian M. Howat,et al. A new bed elevation dataset for Greenland , 2012 .
[22] E. Boyle,et al. On the Structure and Origin of Major Glaciation Cycles 1. Linear Responses to Milankovitch Forcing , 1992 .
[23] J. Gregory,et al. Probabilistic parameterisation of the surface mass balance--elevation feedback in regional climate model simulations of the Greenland ice sheet , 2014 .
[24] M. Broeke,et al. Contemporary (1960–2012) Evolution of the Climate and Surface Mass Balance of the Greenland Ice Sheet , 2014, Surveys in Geophysics.
[25] F. Gillet-Chaulet,et al. Interactive comment on “ Greenland Ice Sheet contribution to sea-level rise from a new-generation icesheet model ” , 2012 .
[26] Xavier Fettweis,et al. The role of albedo and accumulation in the 2010 melting record in Greenland , 2011 .
[27] Eric Rignot,et al. Ice flow in Greenland for the International Polar Year 2008–2009 , 2012 .
[28] Fuyuki Saito,et al. Initial results of the SeaRISE numerical experiments with the models SICOPOLIS and IcIES for the Greenland ice sheet , 2011, Annals of Glaciology.
[29] J. Paden,et al. Radiostratigraphy and age structure of the Greenland Ice Sheet , 2015, Journal of geophysical research. Earth surface.
[30] Eric Larour,et al. Ice Sheet Model Intercomparison Project (ISMIP6) contribution to CMIP6. , 2016, Geoscientific model development.
[31] Phillip A. Chen,et al. The trough-system algorithm and its application to spatial modeling of Greenland subglacial topography , 2014, Annals of Glaciology.
[32] F. Pattyn,et al. Future sea-level rise from Greenland’s main outlet glaciers in a warming climate , 2013, Nature.
[33] Jonathan L. Bamber,et al. A new, high‐resolution digital elevation model of Greenland fully validated with airborne laser altimeter data , 2001 .
[34] Uffe Andersen,et al. The δ18O record along the Greenland Ice Core Project deep ice core and the problem of possible Eemian climatic instability , 1997 .
[35] A. Abe‐Ouchi,et al. SeaRISE experiments revisited: potential sources of spread in multi-model projections of the Greenland ice sheet , 2015 .
[36] North Greenland Ice Core Project members. High-resolution record of Northern Hemisphere climate extending into the last interglacial period , 2004 .
[37] M. Morlighem,et al. Hydrostatic grounding line parameterization in ice sheet models , 2014 .
[38] Philippe Huybrechts,et al. Sea-level changes at the LGM from ice-dynamic reconstructions of the Greenland and Antarctic ice sheets during the glacial cycles , 2002 .
[39] Myoung-Jong Noh,et al. An improved mass budget for the Greenland ice sheet , 2013 .
[40] Martin Truffer,et al. Complex Greenland outlet glacier flow captured , 2016, Nature Communications.
[41] William H. Lipscomb,et al. Ice-sheet model sensitivities to environmental forcing and their use in projecting future sea level (the SeaRISE project) , 2013, Journal of Glaciology.
[42] Alexander Robinson,et al. An efficient regional energy-moisture balance model for simulation of the Greenland Ice Sheet response to climate change , 2009 .
[43] R. Hindmarsh,et al. Dynamical processes involved in the retreat of marine ice sheets , 2001, Journal of Glaciology.
[44] Dorthe Dahl-Jensen,et al. A 60 000 year Greenland stratigraphic ice core chronology , 2007 .
[45] X. Fettweis,et al. Sensitivity of Greenland Ice Sheet Projections to Model Formulations , 2013, Journal of Glaciology.
[46] Xavier Fettweis,et al. Reconstructions of the 1900–2015 Greenland ice sheet surface mass balance using the regional climate MAR model , 2016 .
[47] Isabella Velicogna,et al. Regional acceleration in ice mass loss from Greenland and Antarctica using GRACE time‐variable gravity data , 2014 .
[48] Veronika Eyring,et al. Overview of the Coupled Model Intercomparison Project Phase 6 (CMIP6) experimental design and organization , 2015 .
[49] X. Fettweis,et al. A daily, 1 km resolution data set of downscaled Greenland ice sheet surface mass balance (1958–2015) , 2016 .
[50] J. Jouzel,et al. Evidence for general instability of past climate from a 250-kyr ice-core record , 1993, Nature.
[51] I. Joughin,et al. Kinematic first-order calving law implies potential for abrupt ice-shelf retreat , 2011 .
[52] M. Morlighem,et al. Dependence of century-scale projections of the Greenland ice sheet on its thermal regime , 2013 .
[53] R. S. W. van de Wal,et al. A fully coupled 3-D ice-sheet–sea-level model: algorithm and applications , 2014 .
[54] G. Stadler,et al. Optimal initial conditions for coupling ice sheet models to Earth system models , 2014 .
[55] Ed Bueler,et al. Shallow shelf approximation as a “sliding law” in a thermomechanically coupled ice sheet model , 2008, 0810.3449.
[56] P. Heimbach,et al. Parameter and state estimation with a time-dependent adjoint marine ice sheet model , 2013 .
[57] R. Arthern,et al. Flow speed within the Antarctic ice sheet and its controls inferred from satellite observations , 2015 .
[58] T. Fichefet,et al. The response of the Greenland ice sheet to climate changes in the 21st century by interactive coupling of an AOGCM with a thermomechanical ice-sheet model , 2002, Annals of Glaciology.
[59] M. R. van den Broeke,et al. Higher surface mass balance of the Greenland ice sheet revealed by high‐resolution climate modeling , 2009 .
[60] Helene Seroussi,et al. Recent Progress in Greenland Ice Sheet Modelling , 2017, Current Climate Change Reports.
[61] C. Schoof. Ice sheet grounding line dynamics: Steady states, stability, and hysteresis , 2007 .
[62] Jens Hesselbjerg Christensen,et al. Role of Model Initialisation for Projections of 21st Century Greenland Ice Sheet Mass Loss , 2014 .
[63] Eric Rignot,et al. Insights into spatial sensitivities of ice mass response to environmental change from the SeaRISE ice sheet modeling project II: Greenland , 2013, Journal of Geophysical Research: Earth Surface.
[64] Gaël Durand,et al. Grounding-line migration in plan-view marine ice-sheet models: results of the ice2sea MISMIP3d intercomparison , 2013, Journal of Glaciology.
[65] L Mayer,et al. BedMachine v3: Complete Bed Topography and Ocean Bathymetry Mapping of Greenland From Multibeam Echo Sounding Combined With Mass Conservation , 2017, Geophysical research letters.
[66] Guoming Du,et al. Annual accumulation for Greenland updated using ice core data developed during 2000--2006 and analysis of daily coastal meteorological data , 2009 .
[67] J. Severinghaus,et al. High variability of Greenland surface temperature over the past 4000 years estimated from trapped air in an ice core , 2011 .
[68] Eric Rignot,et al. Deeply incised submarine glacial valleys beneath the Greenland ice sheet , 2014 .
[69] Michael H. Ritzwoller,et al. Inferring surface heat flux distributions guided by a global seismic model: particular application to Antarctica , 2004 .
[70] Daniel F. Martin,et al. Experimental design for three interrelated Marine Ice-Sheet and Ocean Model Intercomparison Projects , 2015 .
[71] X. Fettweis. Reconstruction of the 1979–2006 Greenland ice sheet surface mass balance using the regional climate model MAR , 2007 .
[72] J. Box. Greenland Ice Sheet Mass Balance Reconstruction. Part II: Surface Mass Balance (1840–2010)* , 2013 .
[73] Mauro Perego,et al. Enhanced basal lubrication and the contribution of the Greenland ice sheet to future sea-level rise , 2013, Proceedings of the National Academy of Sciences.
[74] Frank Pattyn,et al. Sea-level response to melting of Antarctic ice shelves on multi-centennial timescales with the fast Elementary Thermomechanical Ice Sheet model (f.ETISh v1.0) , 2017 .
[75] E. Morris,et al. The response of large ice sheets to climatic change , 1992 .
[76] R. Arthern,et al. Initialization of ice-sheet forecasts viewed as an inverse Robin problem , 2010, Journal of Glaciology.
[77] Nico Mölg,et al. The first complete inventory of the local glaciers and ice caps on Greenland , 2012 .
[78] N. Golledge,et al. The multi-millennial Antarctic commitment to future sea-level rise , 2015, Nature.
[79] David Pollard,et al. A simple inverse method for the distribution of basal sliding coefficients under ice sheets, applied to Antarctica , 2012 .
[80] Philippe Huybrechts,et al. The Dynamic Response of the Greenland and Antarctic Ice Sheets to Multiple-Century Climatic Warming , 1999 .
[81] S. Raper,et al. Millennial total sea-level commitments projected with the Earth system model of intermediate complexity LOVECLIM , 2012 .
[82] F. Saito,et al. The Cryosphere Results of the Marine Ice Sheet Model Intercomparison Project , 2012 .
[83] A. Ganopolski,et al. Simulating the Greenland ice sheet under present-day and palaeo constraints including a new discharge parameterization , 2014 .
[84] J. Gregory,et al. Effect of uncertainty in surface mass balance-elevation feedback on projections of the future sea level contribution of the Greenland ice sheet , 2013 .
[85] X. Fettweis,et al. Impact of spatial resolution on the modelling of the Greenland ice sheet surface mass balance between 1990–2010, using the regional climate model MAR , 2012 .
[86] J. Utke,et al. 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) , 2014 .
[87] Roger C. Bales,et al. Accumulation map for the Greenland Ice Sheet: 1971–1990 , 2001 .
[88] D. Pollard,et al. Results from the Ice-Sheet Model Intercomparison Project–Heinrich Event Intercomparison (ISMIP HEINO) , 2010, Journal of Glaciology.
[89] Xavier Fettweis,et al. Greenland Ice Sheet seasonal and spatial mass variability from model simulations and GRACE (2003–2012) , 2015 .
[90] Ian M. Howat,et al. Committed sea-level rise for the next century from Greenland ice sheet dynamics during the past decade , 2011, Proceedings of the National Academy of Sciences.
[91] Eric Rignot,et al. Spatial patterns of basal drag inferred using control methods from a full‐Stokes and simpler models for Pine Island Glacier, West Antarctica , 2010 .
[92] Nils Olsen,et al. Heat Flux Anomalies in Antarctica Revealed by Satellite Magnetic Data , 2005, Science.
[93] M. Morlighem,et al. A mass conservation approach for mapping glacier ice thickness , 2011, Geophysical Research Letters.
[94] Philippe Huybrechts,et al. The Greenland ice sheet and greenhouse warming , 1991 .
[95] P. Huybrechts,et al. Ice-dynamic projections of the Greenland ice sheet in response to atmospheric and oceanic warming , 2014 .
[96] B. Hasholt,et al. Greenland surface mass-balance observations from the ice-sheet ablation area and local glaciers , 2016, Journal of Glaciology.
[97] J. Christensen,et al. Very high resolution regional climate model simulations over Greenland: Identifying added value , 2012 .
[98] Ralf Greve,et al. Relation of measured basal temperatures and the spatial distribution of the geothermal heat flux for the Greenland ice sheet , 2005, Annals of Glaciology.
[99] R. Edwards,et al. 800,000 Years of Abrupt Climate Variability , 2011, Science.
[100] Philip W. Jones. First- and Second-Order Conservative Remapping Schemes for Grids in Spherical Coordinates , 1999 .
[101] J. H. Kennedy,et al. An ice sheet model validation framework for the Greenland ice sheet. , 2016, Geoscientific model development.