Transient simulations, empirical reconstructions and forcing mechanisms for the Mid-holocene hydrological climate in southern Patagonia

被引:40
|
作者
Wagner, Sebastian
Widmann, Martin
Jones, Julie
Haberzettl, Torsten
Luecke, Andreas
Mayr, Christoph
Ohlendorf, Christian
Schaebitz, Frank
Zolitschka, Bernd
机构
[1] GKSS Forschungszentrum Geesthacht GmbH, Inst Coastal Res, D-21502 Geesthacht, Germany
[2] Univ Bremen, Inst Geog, Bremen, Germany
[3] Res Ctr Julich, Inst Chem & Dynam Geoshpere, Julich, Germany
[4] Univ Cologne, Seminar Geog & Didact, Cologne, Germany
关键词
D O I
10.1007/s00382-007-0229-x
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
This study investigates the atmospheric circulation in transient climate simulations with a coupled atmosphere-ocean general circulation model (GCM) for the mid-Holocene (MH) period 7-4.5 ka BP driven with combinations of orbital, solar and greenhouse gas forcings. The focus is on southern South America. Statistical downscaling models are derived from observational data and applied to the simulations to estimate precipitation in south-eastern Patagonia during the MH. These estimates are compared with lake level estimates for Laguna Potrok Aike (LPA) from sediments. Relative to pre-industrial conditions (i.e. 1550-1850), which show extraordinarily high lake levels, the proxy-based reconstructed lake levels during the MH are lower. The downscaled simulated circulation differences indicate higher LPA precipitation during the MH from March to August, higher annual means, and reduced precipitation from September to February. Thus the reconstructed lower LPA lake levels can not be explained solely by the simulated precipitation changes. Possible reasons for this discrepancy are discussed. Based on proxy data from southern South America hypotheses have also been proposed on the latitudinal position of the southern hemispheric westerlies (SHWs). In agreement with some of these hypotheses our simulations show an increased seasonal cycle of the latitudinal position of the SHWs during the MH, which can be explained by the orbital forcing. The simulations also show stronger SHWs over southern Patagonia during austral summer and weaker SHWs during winter. The downscaling model associates weaker SHWs with increased precipitation in the LPA region. However, this relationship is only moderate, and therefore the downscaling model does not support the assumption of a strong link between mean SHWs and precipitation over south-eastern Patagonia, which is the basis of many proxy-based hypotheses about the SHWs.
引用
收藏
页码:333 / 355
页数:23
相关论文
共 50 条
  • [31] Fully coupled climate/dynamical vegetation model simulations over Northern Africa during the mid-Holocene
    R. Doherty
    J. Kutzbach
    J. Foley
    D. Pollard
    Climate Dynamics, 2000, 16 : 561 - 573
  • [32] Mid-Holocene climate and land-sea interaction along the southern coast of Saurashtra, western India
    Banerji, Upasana S.
    Pandey, Shilpa
    Bhushan, Ravi
    Juyal, Navin
    JOURNAL OF ASIAN EARTH SCIENCES, 2015, 111 : 428 - 439
  • [33] Evaluation of PMIP2 and PMIP3 simulations of mid-Holocene climate in the Indo-Pacific, Australasian and Southern Ocean regions
    Ackerley, Duncan
    Reeves, Jessica
    Barr, Cameron
    Bostock, Helen
    Fitzsimmons, Kathryn
    Fletcher, Michael-Shawn
    Gouramanis, Chris
    McGregor, Helen
    Mooney, Scott
    Phipps, Steven J.
    Tibby, John
    Tyler, Jonathan
    CLIMATE OF THE PAST, 2017, 13 (11) : 1661 - 1684
  • [34] Some mechanisms of mid-Holocene climate change in Europe, inferred from comparing PMIP models to data
    C. Bonfils
    N. de Noblet-Ducoudré
    J. Guiot
    P. Bartlein
    Climate Dynamics, 2004, 23 : 79 - 98
  • [35] Some mechanisms of mid-Holocene climate change in Europe, inferred from comparing PMIP models to data
    Bonfils, C
    de Noblet-Ducoudré, N
    Guiot, J
    Bartlein, P
    CLIMATE DYNAMICS, 2004, 23 (01) : 79 - 98
  • [36] Investigating the consistency between proxy-based reconstructions and climate models using data assimilation: a mid-Holocene case study
    Mairesse, A.
    Goosse, H.
    Mathiot, P.
    Wanner, H.
    Dubinkina, S.
    CLIMATE OF THE PAST, 2013, 9 (06) : 2741 - 2757
  • [37] Holocene evolution of the Southern Hemisphere westerly winds in transient simulations with global climate models
    Varma, V.
    Prange, M.
    Merkel, U.
    Kleinen, T.
    Lohmann, G.
    Pfeiffer, M.
    Renssen, H.
    Wagner, A.
    Wagner, S.
    Schulz, M.
    CLIMATE OF THE PAST, 2012, 8 (02) : 391 - 402
  • [38] Simulating the evolution of Hardangerjokulen ice cap in southern Norway since the mid-Holocene and its sensitivity to climate change
    Akesson, Henning
    Nisancioglu, Kerim H.
    Giesen, Rianne H.
    Morlighem, Mathieu
    CRYOSPHERE, 2017, 11 (01): : 281 - 302
  • [39] Mid-Holocene climate of the Tibetan Plateau and hydroclimate in three major river basins based on high-resolution regional climate simulations
    Huo, Yiling
    Peltier, William Richard
    Chandan, Deepak
    CLIMATE OF THE PAST, 2022, 18 (10) : 2401 - 2420
  • [40] North African vegetation-precipitation feedback in early and mid-Holocene climate simulations with CCSM3-DGVM
    Rachmayani, R.
    Prange, M.
    Schulz, M.
    CLIMATE OF THE PAST, 2015, 11 (02) : 175 - 185