地球科学进展 ›› 2000, Vol. 15 ›› Issue (6): 654 -660. doi: 10.11867/j.issn.1001-8166.2000.06.0654

综述与评述 上一篇    下一篇

大洋温盐环流与气候变率的关系研究:科学界的一个新课题
周天军 ,王绍武 ,张学洪   
  1. ①中国科学院大气物理研究所大气科学与地球流体力学国家重点实验室,北京 100029;②北京大学地球物理系,北京 100871
  • 收稿日期:1999-10-26 修回日期:2000-03-15 出版日期:2000-12-01
  • 通讯作者: 周天军(1969-),男,山东省龙口市人,博士后,主要从事海洋—大气耦合模式的发展、应用和气候变化研究。
  • 基金资助:

    国家“九五”科技攻关项目“我国短期气候预测系统的研究”(编号:96-908-02-03)、优秀国家重点实验室研究项目(编号:49823002)和中国科学院“王宽诚博士后奖励基金”联合资助。

COMMENTS ON THE ROLE OF THERMOHALINE CIRCULATION IN GLOBAL CLIMATE SYSTEM

ZHOU Tian-jun ,WANG Shao-wu ,ZHANG Xue-hong
  

  1. ①LASG,Institute of Atmospheric Physics,Chinese Academy of Sciences,Beijing 100029,China;②Geophysics Department of Peking University,Beijing 100871,China
  • Received:1999-10-26 Revised:2000-03-15 Online:2000-12-01 Published:2000-12-01

大洋温盐环流与气候变率的关系研究是90年代中后期以来国际科学界提出的一个新课题。在概述温盐环流基本图像的基础上,讨论了温盐环流在气候系统中的重要作用,介绍了国际科学界针对该问题的未来行动,总结了国际科学界的研究现状。

The activity of the great ocean conveyor,i.e. the thermohaline circulation, and its link to climate variability, is a new problem noticed by international scientific community since the late of 1990s.The objective of this paper is to provide a summary of the conveyor' s operation in global climate system.Both the conceptual diagram depicting the conveyor belt and the important role of it in the climate system have been addressed. Our current research status, together with the future research emphases designated by international scientific plans, is summarized. Emphasis has been put on the revelation of the role of the thermohaline circulation in global climate system.

中图分类号: 

[1]Broecker W S. The great ocean conveyor[J].Oceanography,1991,4(2): 79~89.
[2]Schmitz Jr W J. On the interbasin-scale thermohaline circulation[J]. Reviews of Geophysics, 1995,33(2): 151~173.
[3]Niiler P P. The ocean circulation[A]. In: Trenberth K E, ed.Climate System Modeling[C]. New York: Cambridge Univeristy Press, 1992. 117~148.
[4]Bryden H L. Ocean heat transport across 24°N latitude[A].In: McBean G A, Hantel M, eds. Geophysical Monograph 75,Interactions between Global Climate Subsystems[C].American Geophysical Union, 1993. 65~75.
[5]Stommel H. A survey of ocean current theory[J]. Deep Sea Res, 1958,4: 149~184.
[6]The PAGES/CLIVAR Intersection. Providing the Paleoclimatic Perspective Needed to Understand Climate Variability and Predictability, Report of a joint IGBP/WCRP Workshop, Co-organized and edited by Duplessy J C and J Overpeck, Venice, Italy, 1994.
[7]CLIVAR Science Plan. World Climate Research Program (WCRP-89)[R]. 1995.
[8]周天军,王绍武,张学洪.与气候变率有关的几个海洋学问题[J].应用气象学报,1999,10(1):94~104.
[9]周天军,王绍武,张学洪.大洋温盐环流的稳定性及变率模拟研究进展[J].地球科学进展,1998,13(4):334~343.
[10]Roemmich D, Wunsch C. Apparent changes in the climate state of the deep North Atlantic ocean[J]. Nature, 1984,307:447~450.
[11]Schlosser P, Bonisch G, Rhein M,et al. Reduction of deep water formation in the Greenland sea during the 1980s:Evidence from tracer data[J]. Science, 1991,251: 1 054~1 056.
[12]Duplessy J C, Labeyie L D, Arnold M,et al. North Atlantic sea-surface salinity and abrupt climate change[J]. Nature,1992,358: 485~488.
[13]Wohlleben T M H, Weaver A J. Interdecadal climate variability in the subpolar North Atlantic[J]. Climate Dynamics,1995,11: 459~467.
[14]Levitus S, Antonov J. Observational evidence of interannual to decadal-scale variability of the subsurface temperature-salinity structure of the world ocean[J]. Climate Change,1995,31: 495~514.
[15]Hibler W D, Johnsen S J. The 20-year cycle in Greenland ice core records[J]. Nature, 1979,280:481~483.
[16]Grootes P M. Ice cores as archives of decadal to century scale climate variability[A]. Natural Climate Variability on Decade-to-Century Time Scales [C]. National Research Council, 1995. 544~554.
[17]Broecker W S, Peteet D M, Rind D. Does the ocean-atmosphere system have more than one stable mode of operation? [J]. Nature, 1985,315(2): 21~26.
[18]Dansgaard W, White J W C, Johnsen S J. The abrupt termination of the younger dryas climate event[J]. Nature,1989,339:532~534.
[19]Broecker W S. What drives glacial cycles? [J]. Scientific American, 1990, 262:49~56.
[20]Manabe S, Stouffer R J. Multiple-century response of a coupled ocean-atmosphere model to an increase in atmospheric carbon dioxide[J]. J Climate, 1995, 7: 5~23.
[21]Weaver A J, Hughes T M C. On the incompatibility of ocean and atmosphere models and the need for flux adjustments[J]. Clim Dyn, 1996, 12: 141~170.
[22]Boville B A, Gent P R. The NCAR climate system model,Version One[J]. J Climate, 1998, 11: 115~1 130.
[23]周天军.大洋温盐环流与气候变率的模拟研究[D].北京大学博士研究生学位论文.1999.
[24]周天军,张学洪,王绍武.大洋温盐环流与气候变率关系的模拟研究[J].科学通报,2000,45(4):421~425.
[25]Hurrell J W. Influence of variations in extropical wintertime teleconnections on Northern Hemisphere temperature [J].Geophys Res Lett, 1996, 23:665~668.
[26]Bryan K. Accelerating the convergence to equilibrium of ocean-climate models[J]. J Phys Oceanogr,1984, 14: 666~673.
[27]Webster P J. The role of hydrological processes in ocean-atmosphere interactions[J]. Reviews of Geophysics, 1994,32(4): 427~476.

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[13] 周天军,王绍武,张学洪. 大洋温盐环流的稳定性及变率模拟研究进展[J]. 地球科学进展, 1998, 13(4): 334-343.
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