Rapid Holocene thinning of an East Antarctic outlet glacier driven by marine ice sheet instability
暂无分享,去创建一个
P. W. Kubik | M. Christl | K. Norton | N. Golledge | P. Kubik | C. Fogwill | S. Greenwood | M. Christl | A. Mackintosh | R. S. Jones | R. S. Jones | A. N. Mackintosh | K. P. Norton | N. R. Golledge | C. J. Fogwill | S. L. Greenwood
[1] Eric Rignot,et al. Ice motion of the Patagonian Icefields of South America: 1984–2014 , 2015 .
[2] R. Wieler,et al. Drivers of abrupt Holocene shifts in West Antarctic ice stream direction determined from combined ice sheet modelling and geologic signatures , 2014, Antarctic Science.
[3] K. Lambeck,et al. Sea level and global ice volumes from the Last Glacial Maximum to the Holocene , 2014, Proceedings of the National Academy of Sciences.
[4] John B. Anderson,et al. Ross Sea paleo-ice sheet drainage and deglacial history during and since the LGM , 2014 .
[5] John B. Anderson,et al. A community-based geological reconstruction of Antarctic Ice Sheet deglaciation since the Last Glacial Maximum , 2014 .
[6] Angelyn W. Moore,et al. The Antarctica component of postglacial rebound model ICE-6G_C (VM5a) based on GPS positioning, exposure age dating of ice thicknesses, and relative sea level histories , 2014 .
[7] A. Levermann,et al. Ice plug prevents irreversible discharge from East Antarctica , 2014 .
[8] B. Smith,et al. Marine Ice Sheet Collapse Potentially Under Way for the Thwaites Glacier Basin, West Antarctica , 2014, Science.
[9] R. Finkel,et al. Rapid Thinning of Pine Island Glacier in the Early Holocene , 2014, Science.
[10] A. Payne,et al. Retreat of Pine Island Glacier controlled by marine ice-sheet instability , 2014 .
[11] A. Vieli,et al. Rapid, climate-driven changes in outlet glaciers on the Pacific coast of East Antarctica , 2013, Nature.
[12] F. Pattyn,et al. Future sea-level rise from Greenland’s main outlet glaciers in a warming climate , 2013, Nature.
[13] J. Schaefer,et al. Exposure-age record of Holocene ice sheet and ice shelf change in the northeast Antarctic Peninsula , 2013 .
[14] H. Synal,et al. The ETH Zurich AMS facilities: Performance parameters and reference materials , 2013 .
[15] John B. Anderson,et al. Ice-flow switching and East/West Antarctic Ice Sheet roles in glaciation of the western Ross Sea , 2012 .
[16] Stewart S. R. Jamieson,et al. Ice-stream stability on a reverse bed slope , 2012 .
[17] Bo Sun,et al. Bedmap2: improved ice bed, surface and thickness datasets for Antarctica , 2012 .
[18] Stewart S. R. Jamieson,et al. Antarctic palaeo-ice streams , 2012 .
[19] B. Scheuchl,et al. Ice Flow of the Antarctic Ice Sheet , 2011, Science.
[20] N. Golledge,et al. Geometry and dynamics of an East Antarctic Ice Sheet outlet glacier, under past and present climates , 2011 .
[21] S. Jacobs,et al. Stronger ocean circulation and increased melting under Pine Island Glacier ice shelf , 2011 .
[22] Understanding and Modelling Rapid Dynamic Changes of Tidewater Outlet Glaciers: Issues and Implications , 2011 .
[23] T. Stocker,et al. Expression of the bipolar see-saw in Antarctic climate records during the last deglaciation , 2011 .
[24] J. Jouzel,et al. A comparison of the present and last interglacial periods in six Antarctic ice cores , 2010 .
[25] James A. Smith,et al. Flow and retreat of the Late Quaternary Pine Island‐Thwaites palaeo‐ice stream, West Antarctica , 2010 .
[26] R. Finkel,et al. In situ cosmogenic 10Be production-rate calibration from the Southern Alps, New Zealand , 2010 .
[27] Frank Pattyn,et al. Antarctic subglacial conditions inferred from a hybrid ice sheet/ice stream model , 2010 .
[28] A. Hubbard,et al. Deglacial history of the West Antarctic Ice Sheet in the Weddell Sea embayment: Constraints on past ice volume change , 2010 .
[29] D. Vaughan,et al. Extensive dynamic thinning on the margins of the Greenland and Antarctic ice sheets , 2009, Nature.
[30] D. Monteith,et al. The Neoglacial landscape and human history of Glacier Bay, Glacier Bay National Park and Preserve, southeast Alaska, USA , 2009 .
[31] Ian M. Howat,et al. Large-scale changes in Greenland outlet glacier dynamics triggered at the terminus. , 2009 .
[32] R. Finkel,et al. In situ cosmogenic 10 Be production-rate calibration from the Southern Alps , New Zealand , 2009 .
[33] Ian M. Howat,et al. Continued evolution of Jakobshavn Isbrae following its rapid speedup , 2008 .
[34] Leigh A. Stearns,et al. Increased flow speed on a large East Antarctic outlet glacier caused by subglacial floods , 2008 .
[35] David M. Holland,et al. Acceleration of Jakobshavn Isbræ triggered by warm subsurface ocean waters , 2008 .
[36] J. Stone,et al. A complete and easily accessible means of calculating surface exposure ages or erosion rates from 10Be and 26Al measurements , 2008 .
[37] T. Schenk,et al. Intermittent thinning of Jakobshavn Isbræ, West Greenland, since the Little Ice Age , 2008, Journal of Glaciology.
[38] R. McKay,et al. Retreat history of the Ross Ice Sheet (Shelf) since the Last Glacial Maximum from deep-basin sediment cores around Ross Island , 2008 .
[39] Ian M. Howat,et al. Ice-front variation and tidewater behavior on Helheim and Kangerdlugssuaq Glaciers, Greenland , 2008 .
[40] C. Ramsey. Deposition models for chronological records , 2008 .
[41] C. Schoof. Ice sheet grounding line dynamics: Steady states, stability, and hysteresis , 2007 .
[42] A. Schilt,et al. Orbital and Millennial Antarctic Climate Variability over the Past 800,000 Years , 2007, Science.
[43] J. Southon,et al. Absolute calibration of 10Be AMS standards , 2007 .
[44] T. Scambos,et al. Rapid Changes in Ice Discharge from Greenland Outlet Glaciers , 2007, Science.
[45] Paul E. Geissler,et al. Glacier Changes in Southeast Alaska and Northwest British Columbia and Contribution to Sea Level Rise , 2007 .
[46] Bert De Smedt,et al. Role of transition zones in marine ice sheet dynamics , 2006 .
[47] J. Sachs,et al. Sea surface temperatures of southern midlatitudes 0–160 kyr B.P. , 2006 .
[48] T. Dupont,et al. Role of small ice shelves in sea‐level rise , 2006 .
[49] Nathaniel A. Lifton,et al. Addressing solar modulation and long-term uncertainties in scaling secondary cosmic rays for in situ cosmogenic nuclide applications [rapid communication] , 2005 .
[50] Mark F. Meier,et al. Evolving force balance at Columbia Glacier, Alaska, during its rapid retreat , 2005 .
[51] Richard B. Alley,et al. Assessment of the importance of ice‐shelf buttressing to ice‐sheet flow , 2005 .
[52] A. Vieli,et al. Recent dramatic thinning of largest West Antarctic ice stream triggered by oceans , 2004 .
[53] Ian Joughin,et al. Large fluctuations in speed on Greenland's Jakobshavn Isbræ glacier , 2004, Nature.
[54] T. Scambos,et al. Glacier acceleration and thinning after ice shelf collapse in the Larsen B embayment, Antarctica , 2004 .
[55] G. Denton,et al. Holocene relative sea-level history of the Southern Victoria Land Coast, Antarctica , 2004 .
[56] D. Sugden,et al. Cenozoic landscape evolution of the Convoy Range to Mackay Glacier area, Transantarctic Mountains: Onshore to offshore synthesis , 2004 .
[57] Darin Desilets,et al. Spatial and temporal distribution of secondary cosmic-ray nucleon intensities and applications to in situ cosmogenic dating , 2003 .
[58] M. Caffee,et al. Holocene Deglaciation of Marie Byrd Land, West Antarctica , 2001, Science.
[59] A. Arendt,et al. Rapid Wastage of Alaska Glaciers and Their Contribution to Rising Sea Level , 2002, Science.
[60] Martin Funk,et al. Flow dynamics of tidewater glaciers: a numerical modelling approach , 2001, Journal of Glaciology.
[61] J. Stone. Air pressure and cosmogenic isotope production , 2000 .
[62] G. Denton,et al. Extent and chronology of the ross sea ice sheet and the wilson piedmont glacier along the scott coast at and since the last glacial maximum , 2000 .
[63] G. Denton,et al. Reconstruction of the ross ice drainage system, antarctica, at the last glacial maximum , 2000 .
[64] P. Mayewski,et al. Wisconsinan and holocene climate history from an ice core at taylor dome, western ross embayment, antarctica , 2000 .
[65] De Boelelaan,et al. Scaling factors for production rates of in situ produced cosmogenic nuclides : a critical reevaluation , 2000 .
[66] G. Denton,et al. New relative sea‐level curves for the southern Scott Coast, Antarctica: evidence for Holocene deglaciation of the western Ross Sea , 1999 .
[67] John B. Anderson,et al. Late Pleistocene–Holocene retreat of the West Antarctic Ice-Sheet system in the Ross Sea: Part 2—Sedimentologic and stratigraphic signature , 1999 .
[68] J. Oerlemans,et al. Climate Sensitivity of Franz Josef Glacier, New Zealand, as Revealed by Numerical Modeling , 1997 .
[69] F. Blanckenburg,et al. Separation of 9Be and cosmogenic 10Be from environmental materials and SIMS isotope dilution analysis , 1996 .
[70] J. Andrews,et al. Chronology of late Wisconsin ice retreat from the western Ross Sea, Antarctica , 1996 .
[71] P. Möller. Subrecent moraine ridge formation on Cuff Cape, Victoria Land, Antarctica , 1995 .
[72] D. Lal,et al. Cosmic ray labeling of erosion surfaces: in situ nuclide production rates and erosion models , 1991 .
[73] Mark F. Meier,et al. Fast tidewater glaciers , 1987 .
[74] C. Bentley,et al. A Model for Holocene Retreat of the West Antarctic Ice Sheet , 1978, Quaternary Research.
[75] J. H. Mercer. West Antarctic ice sheet and CO2 greenhouse effect: a threat of disaster , 1978, Nature.
[76] P. E. Calkin. Subglagial Geomorphology Surrounding the Ice-Free Valleys of Southern Victoria Land, Antarctica , 1974, Journal of Glaciology.
[77] J. Weertman,et al. Stability of the Junction of an Ice Sheet and an Ice Shelf , 1974, Journal of Glaciology.
[78] J. H. Mercer. The Response of Fjord Glaciers to Changes in the Firn Limit , 1961, Journal of Glaciology.