The impact of atmospheric and oceanic heat transports on the sea-ice-albedo instability during the Neoproterozoic

被引:42
|
作者
Donnadieu, Y
Ramstein, G
Fluteau, F
Roche, D
Ganopolski, A
机构
[1] CEA Saclay, Lab Sci Climat & Environm, F-91191 Gif Sur Yvette, France
[2] Inst Phys Globe, F-75252 Paris 05, France
[3] Potsdam Inst Climate Impact Res, D-14412 Potsdam, Germany
关键词
D O I
10.1007/s00382-003-0378-5
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
In order to simulate the climatic conditions of the Neoproterozoic, we have conducted a series of simulations with a coupled ocean-atmosphere model of intermediate complexity, CLIMBER-2, using a reduced solar constant of 6% and varied CO2 concentrations. We have also tested the impact of the breakup of the supercontinent Rodinia that has been hypothesized to play an important role in the initiation of an ice-covered Earth. Our results show that for the critical values of 89 and 149 ppm of atmospheric CO2, a snowball Earth occurs in the supercontinent case and in the dislocated configuration, respectively. The study of the sensitivity of the meridional oceanic energy transport to reductions in CO2 concentration and to the dislocation of the supercontinent demonstrates that dynamics ocean processes can modulate the CO2 threshold value, below which a snowball solution is found, but cannot prevent it. The collapse of the overturning cells and of the oceanic heat transport is mainly due to the reduced zonal temperature gradient once the sea-ice line reaches the 30degrees latitudinal band but also to the freshening of the tropical ocean by sea-ice melt. In term of feedbacks, the meridional atmospheric heat transport via the Hadley circulation plays the major role, all along the CO2 decrease, by increasing the energy brought in the front of the sea-ice margin but does not appear enough efficient to prevent the onset of the sea-ice-albedo instability in the case of the continental configurations tested in this contribution.
引用
收藏
页码:293 / 306
页数:14
相关论文
共 50 条
  • [21] SEASONAL OCEANIC HEAT TRANSPORTS COMPUTED FROM AN ATMOSPHERIC MODEL AND OCEAN TEMPERATURE CLIMATOLOGY
    SMITH, TM
    MILLER, JR
    RUSSELL, GL
    DYNAMICS OF ATMOSPHERES AND OCEANS, 1989, 14 (1-2) : 77 - 92
  • [22] The Effect of Atmospheric Transmissivity on Model and Observational Estimates of the Sea Ice Albedo Feedback
    Donohoe, Aaron
    Blanchard-Wrigglesworth, Ed
    Schweiger, Axel
    Rasch, Philip J.
    JOURNAL OF CLIMATE, 2020, 33 (13) : 5743 - 5765
  • [23] Trends in Antarctic Sea Ice and Albedo: Impacts of Ocean-Atmospheric Processes
    Swathi, M.
    Srivastava, Aakriti
    Kumar, Avinash
    Yadav, Juhi
    Gupta, Dinesh Chandra
    Mohan, Rahul
    INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2025,
  • [24] Combined influence of oceanic and atmospheric circulations on Greenland sea ice concentration
    Chatterjee, Sourav
    Raj, Roshin P.
    Bertino, Laurent
    Mernild, Sebastian H.
    Subeesh, Meethale Puthukkottu
    Murukesh, Nuncio
    Ravichandran, Muthalagu
    CRYOSPHERE, 2021, 15 (03): : 1307 - 1319
  • [25] Increasing Antarctic sea ice under warming atmospheric and oceanic conditions
    Zhang, Jinlun
    JOURNAL OF CLIMATE, 2007, 20 (11) : 2515 - 2529
  • [26] OCEANIC HEAT-FLUX AS A COMPONENT OF THE HEAT-BUDGET OF SEA ICE
    LANGLEBEN, MP
    ANNALS OF GLACIOLOGY, 1985, 6 : 171 - 173
  • [27] Landfast sea ice breakouts: Stabilizing ice features, oceanic and atmospheric forcing at Barrow, Alaska
    Jones, Joshua
    Eicken, Hajo
    Mahoney, Andrew
    Rohith, M., V
    Kambhamettu, Chandra
    Fukamachi, Yasushi
    Ohshima, Kay I.
    George, J. Craig
    CONTINENTAL SHELF RESEARCH, 2016, 126 : 50 - 63
  • [28] Local and Remote Responses of Atmospheric and Oceanic Heat Transports to Climate Forcing: Compensation versus Collaboration
    Liu, Zhengyu
    He, Chengfei
    Lu, Feiyu
    JOURNAL OF CLIMATE, 2018, 31 (16) : 6445 - 6460
  • [29] The impact of atmospheric mineral aerosol deposition on the albedo of snow & sea ice: are snow and sea ice optical properties more important than mineral aerosol optical properties?
    Lamare, M. L.
    Lee-Taylor, J.
    King, M. D.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (02) : 843 - 860
  • [30] Relative Contribution of Atmospheric Forcing, Oceanic Preconditioning and Sea Ice to Deep Convection in the Labrador Sea
    Wu, Yang
    Zhao, Xiangjun
    Qi, Zhengdong
    Zhou, Kai
    Qiao, Dalei
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2023, 11 (04)