Atmosphere-only GCM (ACCESS1.0) simulations with prescribed land surface temperatures

被引:25
作者
Ackerley, Duncan [1 ]
Dommenget, Dietmar [1 ]
机构
[1] Monash Univ, Sch Earth Atmosphere & Environm, ARC Ctr Excellence Climate Syst Sci, Clayton, Vic 3800, Australia
关键词
ROSSBY-WAVE PROPAGATION; MODEL DESCRIPTION; WARMING CONTRAST; GREENHOUSE-GAS; DIURNAL CYCLE; CLIMATE; PRECIPITATION; MECHANISMS; AMIP; CIRCULATION;
D O I
10.5194/gmd-9-2077-2016
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
General circulation models (GCMs) are valuable tools for understanding how the global ocean-atmosphere-land surface system interacts and are routinely evaluated relative to observational data sets. Conversely, observational data sets can also be used to constrain GCMs in order to identify systematic errors in their simulated climates. One such example is to prescribe sea surface temperatures (SSTs) such that 70aEuro-% of the Earth's surface temperature field is observationally constrained (known as an Atmospheric Model Intercomparison Project, AMIP, simulation). Nevertheless, in such simulations, land surface temperatures are typically allowed to vary freely, and therefore any errors that develop over the land may affect the global circulation. In this study therefore, a method for prescribing the land surface temperatures within a GCM (the Australian Community Climate and Earth System Simulator, ACCESS) is presented. Simulations with this prescribed land surface temperature model produce a mean climate state that is comparable to a simulation with freely varying land temperatures; for example, the diurnal cycle of tropical convection is maintained. The model is then developed further to incorporate a selection of "proof of concept" sensitivity experiments where the land surface temperatures are changed globally and regionally. The resulting changes to the global circulation in these sensitivity experiments are found to be consistent with other idealized model experiments described in the wider scientific literature. Finally, a list of other potential applications is described at the end of the study to highlight the usefulness of such a model to the scientific community.
引用
收藏
页码:2077 / 2098
页数:22
相关论文
共 63 条
[1]   Summertime precipitation over northern Australia in AMIP simulations from CMIP5 [J].
Ackerley, D. ;
Berry, G. ;
Jakob, C. ;
Reeder, M. J. ;
Schwendike, J. .
QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2015, 141 (690) :1753-1768
[2]   The roles of diurnal forcing and large-scale moisture transport for initiating rain over northwest Australia in a GCM [J].
Ackerley, D. ;
Berry, G. ;
Jakob, C. ;
Reeder, M. J. .
QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2014, 140 (685) :2515-2526
[3]   Forcing, feedbacks and climate sensitivity in CMIP5 coupled atmosphere-ocean climate models [J].
Andrews, Timothy ;
Gregory, Jonathan M. ;
Webb, Mark J. ;
Taylor, Karl E. .
GEOPHYSICAL RESEARCH LETTERS, 2012, 39
[4]  
[Anonymous], 2011, Clivar Exch
[5]   Future climate change in the Southern Hemisphere: Competing effects of ozone and greenhouse gases [J].
Arblaster, J. M. ;
Meehl, G. A. ;
Karoly, D. J. .
GEOPHYSICAL RESEARCH LETTERS, 2011, 38
[6]   Contributions of external forcings to southern annular mode trends [J].
Arblaster, Julie M. ;
Meehl, Gerald A. .
JOURNAL OF CLIMATE, 2006, 19 (12) :2896-2905
[7]   The Tropospheric Land-Sea Warming Contrast as the Driver of Tropical Sea Level Pressure Changes [J].
Bayr, Tobias ;
Dommenget, Dietmar .
JOURNAL OF CLIMATE, 2013, 26 (04) :1387-1402
[8]   Physical Mechanisms Regulating Summertime Rainfall over Northwestern Australia [J].
Berry, Gareth ;
Reeder, Michael J. ;
Jakob, Christian .
JOURNAL OF CLIMATE, 2011, 24 (14) :3705-3717
[9]   The Joint UK Land Environment Simulator (JULES), model description - Part 1: Energy and water fluxes [J].
Best, M. J. ;
Pryor, M. ;
Clark, D. B. ;
Rooney, G. G. ;
Essery, R. L. H. ;
Menard, C. B. ;
Edwards, J. M. ;
Hendry, M. A. ;
Porson, A. ;
Gedney, N. ;
Mercado, L. M. ;
Sitch, S. ;
Blyth, E. ;
Boucher, O. ;
Cox, P. M. ;
Grimmond, C. S. B. ;
Harding, R. J. .
GEOSCIENTIFIC MODEL DEVELOPMENT, 2011, 4 (03) :677-699
[10]   Determining the optimal soil temperature scheme for atmospheric modelling applications [J].
Best, MJ ;
Cox, PM ;
Warrilow, D .
BOUNDARY-LAYER METEOROLOGY, 2005, 114 (01) :111-142