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dc.contributor.author유창현*
dc.date.accessioned2021-11-16T16:31:49Z-
dc.date.available2021-11-16T16:31:49Z-
dc.date.issued2021*
dc.identifier.issn2662-138X*
dc.identifier.otherOAK-30130*
dc.identifier.urihttps://dspace.ewha.ac.kr/handle/2015.oak/259534-
dc.description.abstractOver the modern satellite era, substantial climatic changes have been observed in the Antarctic, including atmospheric and oceanic warming, ice sheet thinning and a general Antarctic-wide expansion of sea ice, followed by a more recent rapid loss. Although these changes, featuring strong zonal asymmetry, are partially influenced by increasing greenhouse gas emissions and stratospheric ozone depletion, tropical-polar teleconnections are believed to have a role through Rossby wave dynamics. In this Review, we synthesize understanding of tropical teleconnections to the Southern Hemisphere extratropics arising from the El Nino-Southern Oscillation, Interdecadal Pacific Oscillation and Atlantic Multidecadal Oscillation, focusing on the mechanisms and long-term climatic impacts. These teleconnections have contributed to observed Antarctic and Southern Ocean changes, including regional rapid surface warming, pre-2015 sea ice expansion and its sudden reduction thereafter, changes in ocean heat content and accelerated thinning of most of the Antarctic ice sheet. However, due to limited observations and inherent model biases, uncertainties remain in understanding and assessing the importance of these teleconnections versus those arising from greenhouse gases, ozone recovery and internal variability. Sustained pan-Antarctic efforts towards long-term observations, and more realistic dynamics and parameterizations in high-resolution climate models, offer opportunities to reduce these uncertainties. Tropical teleconnections can influence polar climates through the generation of stationary Rossby waves. This Review outlines the dynamics and impacts of long-term tropical-polar connections on the Antarctic climate, which include warming trends and ice mass loss in West Antarctica.*
dc.languageEnglish*
dc.publisherSPRINGERNATURE*
dc.titleTropical teleconnection impacts on Antarctic climate changes*
dc.typeReview*
dc.relation.issue10*
dc.relation.volume2*
dc.relation.indexSCOPUS*
dc.relation.startpage680*
dc.relation.lastpage698*
dc.relation.journaltitleNATURE REVIEWS EARTH & ENVIRONMENT*
dc.identifier.doi10.1038/s43017-021-00204-5*
dc.identifier.wosidWOS:000691637500001*
dc.identifier.scopusid2-s2.0-85114602590*
dc.author.googleLi, Xichen*
dc.author.googleCai, Wenju*
dc.author.googleMeehl, Gerald A.*
dc.author.googleChen, Dake*
dc.author.googleYuan, Xiaojun*
dc.author.googleRaphael, Marilyn*
dc.author.googleHolland, David M.*
dc.author.googleDing, Qinghua*
dc.author.googleFogt, Ryan L.*
dc.author.googleMarkle, Bradley R.*
dc.author.googleWang, Guojian*
dc.author.googleBromwich, David H.*
dc.author.googleTurner, John*
dc.author.googleXie, Shang-Ping*
dc.author.googleSteig, Eric J.*
dc.author.googleGille, Sarah T.*
dc.author.googleXiao, Cunde*
dc.author.googleWu, Bingyi*
dc.author.googleLazzara, Matthew A.*
dc.author.googleChen, Xianyao*
dc.author.googleStammerjohn, Sharon*
dc.author.googleHolland, Paul R.*
dc.author.googleHolland, Marika M.*
dc.author.googleCheng, Xiao*
dc.author.googlePrice, Stephen F.*
dc.author.googleWang, Zhaomin*
dc.author.googleBitz, Cecilia M.*
dc.author.googleShi, Jiuxin*
dc.author.googleGerber, Edwin P.*
dc.author.googleLiang, Xi*
dc.author.googleGoosse, Hugues*
dc.author.googleYoo, Changhyun*
dc.author.googleDing, Minghu*
dc.author.googleGeng, Lei*
dc.author.googleXin, Meijiao*
dc.author.googleLi, Chuanjin*
dc.author.googleDou, Tingfeng*
dc.author.googleLiu, Chengyan*
dc.author.googleSun, Weijun*
dc.author.googleWang, Xinyue*
dc.author.googleSong, Chentao*
dc.contributor.scopusid유창현(7201746369)*
dc.date.modifydate20240322114120*
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공과대학 > 기후에너지시스템공학과 > Journal papers
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