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The Community Earth System Model (CESM) Large Ensemble Project: A Community Resource for Studying Climate Change in the Presence of Internal Climate Variability

Bulletin of the American Meteorological Society · 2014 · Vol. 96(8) · pp. 1333–1349
Jennifer E. KayClara DeserAdam S. PhillipsA. MaiCécile HannayGary StrandJulie M. ArblasterSusan C. BatesGökhan DanabasogluJames EdwardsMarika M. HollandPaul J. KushnerJean‐François LamarqueDavid M. LawrenceKeith LindsayAlexandra MiddletonE. MunozRichard NealeKeith W. OlesonLorenzo M. PolvaniMariana Vertenstein

Abstract

Abstract While internal climate variability is known to affect climate projections, its influence is often underappreciated and confused with model error. Why? In general, modeling centers contribute a small number of realizations to international climate model assessments [e.g., phase 5 of the Coupled Model Intercomparison Project (CMIP5)]. As a result, model error and internal climate variability are difficult, and at times impossible, to disentangle. In response, the Community Earth System Model (CESM) community designed the CESM Large Ensemble (CESM-LE) with the explicit goal of enabling assessment of climate change in the presence of internal climate variability. All CESM-LE simulations use a single CMIP5 model (CESM with the Community Atmosphere Model, version 5). The core simulations replay the twenty to twenty-first century (1920–2100) 30 times under historical and representative concentration pathway 8.5 external forcing with small initial condition differences. Two companion 1000+-yr-long preindustrial control simulations (fully coupled, prognostic atmosphere and land only) allow assessment of internal climate variability in the absence of climate change. Comprehensive outputs, including many daily fields, are available as single-variable time series on the Earth System Grid for anyone to use. Early results demonstrate the substantial influence of internal climate variability on twentieth- to twenty-first-century climate trajectories. Global warming hiatus decades occur, similar to those recently observed. Internal climate variability alone can produce projection spread comparable to that in CMIP5. Scientists and stakeholders can use CESM-LE outputs to help interpret the observational record, to understand projection spread and to plan for a range of possible futures influenced by both internal climate variability and forced climate change.

Climate variability and modelsAtmospheric and Environmental Gas DynamicsMeteorological Phenomena and SimulationsClimatologyCoupled model intercomparison projectClimate modelClimate changeEnvironmental scienceEarth system scienceForcing (mathematics)DownscalingMeteorologyPrecipitation

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • Commonwealth Scientific and Industrial Research Organisation
  • Office of Science
  • Goddard Space Flight Center
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References
Climate model genealogy: Generation CMIP5 and how we got there
Geophysical Research Letters · 2013 · 930 citations
The Potential to Narrow Uncertainty in Regional Climate Predictions
Bulletin of the American Meteorological Society · 2009 · 2,704 citations
An Overview of CMIP5 and the Experiment Design
Bulletin of the American Meteorological Society · 2011 · 14,669 citations
The Community Earth System Model: A Framework for Collaborative Research
Bulletin of the American Meteorological Society · 2013 · 2,799 citations
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The Community Earth System Model (CESM) Large Ensemble Project: A Community Resource for Studying Climate Change in the Presence of Internal Climate Variability · Scinovex