CERESMIP: a climate modeling protocol to investigate recent trends in the Earth's Energy Imbalance

被引:13
|
作者
Schmidt, Gavin A. [1 ]
Andrews, Timothy [2 ]
Bauer, Susanne E. [1 ]
Durack, Paul J. [3 ]
Loeb, Norman G. [4 ]
Ramaswamy, V. [5 ]
Arnold, Nathan P. [6 ]
Bosilovich, Michael G. [6 ]
Cole, Jason [7 ]
Horowitz, Larry W. [5 ]
Johnson, Gregory C. [8 ]
Lyman, John M. [8 ,9 ]
Medeiros, Brian [10 ]
Michibata, Takuro [11 ]
Olonscheck, Dirk [12 ]
Paynter, David [4 ]
Raghuraman, Shiv Priyam [10 ]
Schulz, Michael [13 ]
Takasuka, Daisuke [14 ,15 ]
Tallapragada, Vijay [16 ]
Taylor, Patrick C. [4 ]
Ziehn, Tilo [17 ]
机构
[1] NASA Goddard Inst Space Studies, New York, NY 10025 USA
[2] Met Off Hadley Ctr, Exeter, England
[3] Program Climate Model Diag & Intercomparison, Lawrence Livermore Natl Lab, Livermore, CA USA
[4] NASA Langley Res Ctr, Hampton, VA USA
[5] NOAA Geophys Fluid Dynam Lab, Princeton, NJ USA
[6] NASA Goddard Space Flight Ctr, Greenbelt, MD USA
[7] Canadian Ctr Climate Modelling & Anal CCCma, Victoria, BC, Canada
[8] NOAA Pacific Marine Environm Lab, Seattle, WA USA
[9] Univ Hawaii, Cooperat Inst Marine Res CIMAR, Honolulu, HI USA
[10] Natl Ctr Atmospher Res NCAR, Mesa Lab, Boulder, CO USA
[11] Okayama Univ, Dept Earth Sci, Okayama, Japan
[12] Max Planck Inst Meteorol, Hamburg, Germany
[13] Norwegian Meteorol Inst, Oslo, Norway
[14] Univ Tokyo, Atmosphere & Ocean Res Inst, Tokyo, Japan
[15] Japan Agcy Marine Earth Sci & Technol, Yokohama, Japan
[16] NOAA NCEP Environm Modeling Ctr, College Pk, MD USA
[17] Commenwealth Sci & Ind Res Org CSIRO, Environm, Aspendale, Vic, Australia
来源
FRONTIERS IN CLIMATE | 2023年 / 5卷
基金
欧盟地平线“2020”; 日本学术振兴会;
关键词
CMIP6; climate modeling; earth's energy balance; aerosols; cloud feedbacks; AMIP; SYSTEM CERES; CLOUDS; ICE;
D O I
10.3389/fclim.2023.1202161
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The Clouds and the Earth's Radiant Energy System (CERES) project has now produced over two decades of observed data on the Earth's Energy Imbalance (EEI) and has revealed substantive trends in both the reflected shortwave and outgoing longwave top-of-atmosphere radiation components. Available climate model simulations suggest that these trends are incompatible with purely internal variability, but that the full magnitude and breakdown of the trends are outside of the model ranges. Unfortunately, the Coupled Model Intercomparison Project (Phase 6) (CMIP6) protocol only uses observed forcings to 2014 (and Shared Socioeconomic Pathways (SSP) projections thereafter), and furthermore, many of the 'observed' drivers have been updated substantially since the CMIP6 inputs were defined. Most notably, the sea surface temperature (SST) estimates have been revised and now show up to 50% greater trends since 1979, particularly in the southern hemisphere. Additionally, estimates of short-lived aerosol and gas-phase emissions have been substantially updated. These revisions will likely have material impacts on the model-simulated EEI. We therefore propose a new, relatively low-cost, model intercomparison, CERESMIP, that would target the CERES period (2000-present), with updated forcings to at least the end of 2021. The focus will be on atmosphere-only simulations, using updated SST, forcings and emissions from 1990 to 2021. The key metrics of interest will be the EEI and atmospheric feedbacks, and so the analysis will benefit from output from satellite cloud observation simulators. The Tier 1 request would consist only of an ensemble of AMIP-style simulations, while the Tier 2 request would encompass uncertainties in the applied forcing, atmospheric composition, single and all-but-one forcing responses. We present some preliminary results and invite participation from a wide group of models.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Observing and Modeling Earth’s Energy Flows
    Bjorn Stevens
    Stephen E. Schwartz
    Surveys in Geophysics, 2012, 33 : 779 - 816
  • [32] Observing and Modeling Earth's Energy Flows
    Stevens, Bjorn
    Schwartz, Stephen E.
    SURVEYS IN GEOPHYSICS, 2012, 33 (3-4) : 779 - 816
  • [33] Energy conservation in the Earth's crust and climate change
    Mu, Yao
    Mu, Xinzhi
    JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2013, 63 (02) : 150 - 160
  • [34] The flow of energy through the earth's climate system
    Trenberth, KE
    Stepaniak, DP
    QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2004, 130 (603) : 2677 - 2701
  • [35] Earth's Energy Imbalance From the Ocean Perspective (2005-2019)
    Hakuba, M. Z.
    Frederikse, T.
    Landerer, F. W.
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (16)
  • [36] AN ATTEMPT TOWARDS DYNAMIC MODELING OF THE EARTH'S CLIMATE SYSTEM
    Khan, S. B.
    Ahmed, N. U.
    DYNAMIC SYSTEMS AND APPLICATIONS, 2015, 24 (1-2): : 155 - 168
  • [37] Sea and land surface temperatures, ocean heat content, Earth's energy imbalance and net radiative forcing over the recent years
    Dieng, H. B.
    Cazenave, A.
    Meyssignac, B.
    von Schuckmann, K.
    Palanisamy, H.
    INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2017, 37 : 218 - 229
  • [38] Changes in the flow of energy through the Earth's climate system
    Trenberth, Kevin E.
    Fasullo, John T.
    METEOROLOGISCHE ZEITSCHRIFT, 2009, 18 (04) : 369 - 377
  • [39] Understanding climate change through Earth's energy flows
    Trenberth, Kevin E.
    JOURNAL OF THE ROYAL SOCIETY OF NEW ZEALAND, 2020, 50 (02) : 331 - 347
  • [40] Modeling US Adult Obesity Trends: A System Dynamics Model for Estimating Energy Imbalance Gap
    Fallah-Fini, Saeideh
    Rahmandad, Hazhir
    Huang, Terry T. -K.
    Bures, Regina M.
    Glass, Thomas A.
    AMERICAN JOURNAL OF PUBLIC HEALTH, 2014, 104 (07) : 1230 - 1239