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Ice front blocking of ocean heat transport to an Antarctic ice shelf 期刊论文
NATURE, 2020, 578 (7796) : 568-+
作者:  Alexandrov, Ludmil B.;  Kim, Jaegil;  Haradhvala, Nicholas J.;  Huang, Mi Ni;  Ng, Alvin Wei Tian;  Wu, Yang;  Boot, Arnoud;  Covington, Kyle R.;  Gordenin, Dmitry A.;  Bergstrom, Erik N.;  Islam, S. M. Ashiqul;  Lopez-Bigas, Nuria;  Klimczak, Leszek J.;  McPherson, John R.;  Morganella, Sandro;  Sabarinathan, Radhakrishnan;  Wheeler, David A.;  Mustonen, Ville;  Getz, Gad;  Rozen, Steven G.;  Stratton, Michael R.
收藏  |  浏览/下载:12/0  |  提交时间:2020/05/13

The front of the Getz Ice Shelf in West Antarctica creates an abrupt topographic step that deflects ocean currents, suppressing 70% of the heat delivery to the ice sheet.


Mass loss from the Antarctic Ice Sheet to the ocean has increased in recent decades, largely because the thinning of its floating ice shelves has allowed the outflow of grounded ice to accelerate(1,2). Enhanced basal melting of the ice shelves is thought to be the ultimate driver of change(2,3), motivating a recent focus on the processes that control ocean heat transport onto and across the seabed of the Antarctic continental shelf towards the ice(4-6). However, the shoreward heat flux typically far exceeds that required to match observed melt rates(2,7,8), suggesting that other critical controls exist. Here we show that the depth-independent (barotropic) component of the heat flow towards an ice shelf is blocked by the marked step shape of the ice front, and that only the depth-varying (baroclinic) component, which is typically much smaller, can enter the sub-ice cavity. Our results arise from direct observations of the Getz Ice Shelf system and laboratory experiments on a rotating platform. A similar blocking of the barotropic component may occur in other areas with comparable ice-bathymetry configurations, which may explain why changes in the density structure of the water column have been found to be a better indicator of basal melt rate variability than the heat transported onto the continental shelf(9). Representing the step topography of the ice front accurately in models is thus important for simulating ocean heat fluxes and induced melt rates.


  
Thermodynamic versus Dynamic Controls on Extreme Precipitation in a Warming Climate from the Community Earth System Model Large Ensemble 期刊论文
JOURNAL OF CLIMATE, 2019, 32 (4) : 1025-1045
作者:  Norris, Jesse;  Chen, Gang;  Neelin, J. David
收藏  |  浏览/下载:10/0  |  提交时间:2019/04/09
Hydrologic cycle  Mass fluxes/transport  Extreme events  Precipitation  Climate change  Moisture/moisture budget  
Pacific Influences on the Meridional Temperature Transport of the Indian Ocean 期刊论文
JOURNAL OF CLIMATE, 2019, 32 (4) : 1047-1061
作者:  Ma, Jie;  Feng, Ming;  Sloyan, Bernadette M.;  Lan, Jian
收藏  |  浏览/下载:6/0  |  提交时间:2019/04/09
Indian Ocean  Boundary currents  ENSO  Mass fluxes/transport  Meridional overturning circulation  Ocean circulation  
Investigating the Causes of Increased Twentieth-Century Fall Precipitation over the Southeastern United States 期刊论文
JOURNAL OF CLIMATE, 2019, 32 (2) : 575-590
作者:  Bishop, Daniel A.;  Williams, A. Park;  Seager, Richard;  Fiore, Arlene M.;  Cook, Benjamin I.;  Mankin, Justin S.;  Singh, Deepti;  Smerdon, Jason E.;  Rao, Mukund P.
收藏  |  浏览/下载:10/0  |  提交时间:2019/04/09
North America  Atmospheric circulation  Forcing  Mass fluxes  transport  Precipitation  Climate variability  
The Effect of Air-Sea Flux Products, Shortwave Radiation Depth Penetration, and Albedo on the Upper Ocean Overturning Circulation 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (17) : 9087-9097
作者:  Groeskamp, Sjoerd;  Iudicone, Daniele
收藏  |  浏览/下载:4/0  |  提交时间:2019/04/09
water mass transformation  air-sea fluxes  upper ocean circulation  Chlorophyll a  biogeochemistry  mixing  
Analyzing energy-water exchange dynamics in the Thar desert 期刊论文
CLIMATE DYNAMICS, 2018, 50: 3281-3300
作者:  Raja, P.;  Singh, Nilendu;  Srinivas, C. V.;  Singhal, Mohit;  Chauhan, Pankaj;  Singh, Maharaj;  Sinha, N. K.
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
Energy-mass exchange  Surface fluxes  Sensible heating  Land-atmosphere coupling  Thar desert heat low  Indian summer monsoon