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英研究发现AMOC不太可能在本世纪崩溃 快报文章
资源环境快报,2025年第5期
作者:  刘燕飞
Microsoft Word(41Kb)  |  收藏  |  浏览/下载:475/1  |  提交时间:2025/03/14
AMOC  Southern Ocean  PMOC  
美科学家预计全球气温水平将在2045年增加2 ℃ 快报文章
气候变化快报,2025年第4期
作者:  秦冰雪
Microsoft Word(16Kb)  |  收藏  |  浏览/下载:437/0  |  提交时间:2025/02/20
Climate Change  Temperature  AMOC  
新研究发现大西洋经向翻转环流在过去60年并未减弱 快报文章
资源环境快报,2025年第2期
作者:  魏艳红
Microsoft Word(16Kb)  |  收藏  |  浏览/下载:474/1  |  提交时间:2025/01/31
AMOC  Air-sea Heat Fluxes  Sea Surface Temperature Measurements  
大西洋和北极水域混合在全球海洋环流中的关键作用 快报文章
资源环境快报,2024年第17期
作者:  魏艳红
Microsoft Word(17Kb)  |  收藏  |  浏览/下载:358/3  |  提交时间:2024/09/15
AMOC  Global Ocean Circulation  Earth's Climate  
美研究提出AMOC深层水输送路径的新发现 快报文章
气候变化快报,2024年第7期
作者:  刘燕飞
Microsoft Word(26Kb)  |  收藏  |  浏览/下载:259/2  |  提交时间:2024/04/03
Atlantic Meridional Overturning Circulation (AMOC)  Eastern Pathway  Western Pathways  
荷兰研究指出大西洋经向翻转环流正在迈入临界点 快报文章
资源环境快报,2024年第3期
作者:  魏艳红
Microsoft Word(13Kb)  |  收藏  |  浏览/下载:619/1  |  提交时间:2024/02/15
AMOC  Atlantic Ocean  Tipping Point  
丹麦研究警告大西洋经向翻转环流即将崩溃 快报文章
气候变化快报,2023年第16期
作者:  王田宇,刘燕飞
Microsoft Word(14Kb)  |  收藏  |  浏览/下载:580/2  |  提交时间:2023/08/20
AMOC  Dansgaard-Oeschger  
CMIP6 Models Predict Significant 21st Century Decline of the Atlantic Meridional Overturning Circulation 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (12)
作者:  Weijer, W.;  Cheng, W.;  Garuba, O. A.;  Hu, A.;  Nadiga, B. T.
收藏  |  浏览/下载:17/0  |  提交时间:2020/05/25
AMOC  CMIP6  
Oceanic forcing of penultimate deglacial and last interglacial sea-level rise 期刊论文
NATURE, 2020, 577 (7792) : 660-+
作者:  Rizal, Yan;  Westaway, Kira E.;  Zaim, Yahdi;  van den Bergh, Gerrit D.;  Bettis, E. Arthur, III;  Morwood, Michael J.;  Huffman, O. Frank;  Grun, Rainer;  Joannes-Boyau, Renaud;  Bailey, Richard M.;  Sidarto;  Westaway, Michael C.;  Kurniawan, Iwan;  Moore, Mark W.;  Storey, Michael;  Aziz, Fachroel;  Suminto;  Zhao, Jian-xin;  Aswan;  Sipola, Maija E.;  Larick, Roy;  Zonneveld, John-Paul;  Scott, Robert;  Putt, Shelby;  Ciochon, Russell L.
收藏  |  浏览/下载:39/0  |  提交时间:2020/05/13

Sea-level histories during the two most recent deglacial-interglacial intervals show substantial differences(1-3) despite both periods undergoing similar changes in global mean temperature(4,5) and forcing from greenhouse gases(6). Although the last interglaciation (LIG) experienced stronger boreal summer insolation forcing than the present interglaciation(7), understanding why LIG global mean sea level may have been six to nine metres higher than today has proven particularly challenging(2). Extensive areas of polar ice sheets were grounded below sea level during both glacial and interglacial periods, with grounding lines and fringing ice shelves extending onto continental shelves(8). This suggests that oceanic forcing by subsurface warming may also have contributed to ice-sheet loss(9-12) analogous to ongoing changes in the Antarctic(13,14) and Greenland(15) ice sheets. Such forcing would have been especially effective during glacial periods, when the Atlantic Meridional Overturning Circulation (AMOC) experienced large variations on millennial timescales(16), with a reduction of the AMOC causing subsurface warming throughout much of the Atlantic basin(9,12,17). Here we show that greater subsurface warming induced by the longer period of reduced AMOC during the penultimate deglaciation can explain the more-rapid sea-level rise compared with the last deglaciation. This greater forcing also contributed to excess loss from the Greenland and Antarctic ice sheets during the LIG, causing global mean sea level to rise at least four metres above modern levels. When accounting for the combined influences of penultimate and LIG deglaciation on glacial isostatic adjustment, this excess loss of polar ice during the LIG can explain much of the relative sea level recorded by fossil coral reefs and speleothems at intermediate- and far-field sites.


  
Mean Structure and Seasonality of the Norwegian Atlantic Front Current Along the Mohn Ridge From Repeated Glider Transects 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2019, 46 (22) : 13170-13179
作者:  Bosse, Anthony;  Fer, Ilker
收藏  |  浏览/下载:17/0  |  提交时间:2020/02/17
Atlantic Current  Nordic Seas  gliders  AMOC  Mohn Ridge  heat transport