Future climate change under RCP emission scenarios with GISS ModelE2
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Mike Bauer | Makiko Sato | David Rind | Nadine Unger | T. Clune | Andrew A. Lacis | Gavin A. Schmidt | V. Oinas | Rainer Bleck | Michael J. Puma | Shan Sun | Apostolos Voulgarakis | A. D. Del Genio | J. Hansen | V. Canuto | A. Voulgarakis | G. Schmidt | M. Kelley | L. Nazarenko | R. Ruedy | G. Russell | I. Aleinov | M. Bauer | S. Bauer | R. Bleck | T. Clune | A. D. Del Genio | G. Faluvegi | R. Healy | N. Kiang | D. Koch | A. Lacis | A. LeGrande | J. Lerner | K. Lo | S. Menon | V. Oinas | J. Perlwitz | M. Puma | D. Rind | A. Romanou | D. Shindell | Shan Sun | N. Tausnev | N. Unger | M. Yao | Jinlun Zhang | Y. Cheng | A. Genio | J. Hansen | M. Sato | Gary L. Russell | Allegra N. LeGrande | Reto Ruedy | J. Lerner | Ron L. Miller | Mao-Sung Yao | Surabi Menon | Dorothy Koch | Anastasia Romanou | Igor Aleinov | Greg Faluvegi | V. M. Canuto | Larissa Nazarenko | James Hansen | R. Miller | S. Sun | K. Tsigaridis | M. Kelley | Y. Cheng | Susanne E. Bauer | Drew Shindell | Jinlun Zhang | N. Tausnev | N. Y. Kiang | Ronald L. Miller | Jan Perlwitz | R. J. Healy | K. K. Lo | K. Tsigaridis | A. Legrande | M. Yao
[1] W. Large,et al. Oceanic vertical mixing: a review and a model with a nonlocal boundary layer parameterization , 1994 .
[2] M. Yao,et al. Cumulus Microphysics and Climate Sensitivity , 2005 .
[3] G. Schmidt,et al. Simulation of recent northern winter climate trends by greenhouse-gas forcing , 1999, Nature.
[4] J. Wallace,et al. The Arctic oscillation signature in the wintertime geopotential height and temperature fields , 1998 .
[5] William M. Putman,et al. Configuration and assessment of the GISS ModelE2 contributions to the CMIP5 archive , 2014 .
[6] Ronald,et al. GFDL’s ESM2 Global Coupled Climate–Carbon Earth System Models. Part I: Physical Formulation and Baseline Simulation Characteristics , 2012 .
[7] D. Rothrock,et al. Modeling Arctic sea ice with an efficient plastic solution , 2000 .
[8] David Rind,et al. A coupled atmosphere‐ocean model for transient climate change studies , 1995 .
[9] Reto Knutti,et al. Energy budget constraints on climate response , 2013 .
[10] E. Hawkins,et al. The Potential to Narrow Uncertainty in Regional Climate Predictions , 2009 .
[11] S. Solomon. The Physical Science Basis : Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change , 2007 .
[12] Makiko Sato,et al. Greenhouse gas growth rates. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[13] V. Canuto,et al. Present-Day Atmospheric Simulations Using GISS ModelE: Comparison to In Situ, Satellite, and Reanalysis Data , 2006 .
[14] Rainer Bleck,et al. An oceanic general circulation model framed in hybrid isopycnic-Cartesian coordinates , 2002 .
[15] Anthony D. Del Genio,et al. Effects of Cloud Parameterization on the Simulation of Climate Changes in the GISS GCM , 1999 .
[16] J. Wallace,et al. Regional Climate Impacts of the Northern Hemisphere Annular Mode , 2001, Science.
[17] K. Taylor,et al. Forcing, feedbacks and climate sensitivity in CMIP5 coupled atmosphere‐ocean climate models , 2012 .
[18] B. Soden,et al. Robust Responses of the Hydrological Cycle to Global Warming , 2006 .
[19] S. Bony,et al. Marine boundary layer clouds at the heart of tropical cloud feedback uncertainties in climate models , 2005 .
[20] Yu Kosaka,et al. Recent global-warming hiatus tied to equatorial Pacific surface cooling , 2013, Nature.
[21] Gavin A. Schmidt,et al. Reconciling warming trends , 2014 .
[22] V. Masson‐Delmotte,et al. Target atmospheric CO2: Where should humanity aim? , 2008, 0804.1126.
[23] Bengamin I. Moat,et al. Observed decline of the Atlantic meridional overturning circulation 2004–2012 , 2013 .
[24] J. Hansen,et al. Climate Response Times: Dependence on Climate Sensitivity and Ocean Mixing , 1985, Science.
[25] C. Deser,et al. Communication of the role of natural variability in future North American climate , 2012 .
[26] R. Stouffer,et al. Sensitivity of Twenty-First-Century Global-Mean Steric Sea Level Rise to Ocean Model Formulation , 2013 .
[27] D. Hartmann,et al. The Atmospheric Energy Constraint on Global-Mean Precipitation Change , 2014 .
[28] S. Bony,et al. Interpretation of the positive low-cloud feedback predicted by a climate model under global warming , 2013, Climate Dynamics.
[29] M. Holland,et al. Trends in Arctic sea ice extent from CMIP5, CMIP3 and observations , 2012 .
[30] W. G. Strand,et al. Climate System Response to External Forcings and Climate Change Projections in CCSM4 , 2012 .
[31] A. Thomson,et al. The representative concentration pathways: an overview , 2011 .
[32] E. Roeckner,et al. Impact of melt ponds on Arctic sea ice in past and future climates as simulated by MPI‐ESM , 2012 .
[33] D. Streets,et al. Dangerous human-made interference with climate: a GISS modelE study , 2006, physics/0610115.
[34] J. Hansen,et al. Efficacy of climate forcings , 2005 .
[35] J. Hansen,et al. The North Atlantic thermohaline circulation simulated by the GISS climate model during 1970–99 , 2007 .
[36] Chris E Forest,et al. Ensemble climate predictions using climate models and observational constraints , 2007, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[37] Gavin A. Schmidt,et al. Enhancing the relevance of palaeoclimate model/data comparisons for assessments of future climate change , 2010 .
[38] G. Meehl,et al. Intergovernmental Panel on Climate Change. 2007. Climate Change 2007: The Physical Science Basis, edited by , 2022 .
[39] E. Stehfest,et al. RCP2.6: exploring the possibility to keep global mean temperature increase below 2°C , 2011 .
[40] Isaac M. Held,et al. The Gap between Simulation and Understanding in Climate Modeling , 2005 .
[41] Eric Rignot,et al. Revisiting the Earth's sea-level and energy budgets from 1961 to 2008 , 2011 .
[42] B. Stevens,et al. Climate and carbon cycle changes from 1850 to 2100 in MPI‐ESM simulations for the Coupled Model Intercomparison Project phase 5 , 2013 .
[43] Tom M. L. Wigley,et al. Climates of the Twentieth and Twenty-First Centuries Simulated by the NCAR Climate System Model , 2001 .
[44] N. Nakicenovic,et al. RCP 8.5—A scenario of comparatively high greenhouse gas emissions , 2011 .
[45] R L Miller,et al. Consistent simulations of multiple proxy responses to an abrupt climate change event. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[46] Daniel Orlikowski,et al. Black carbon aerosols and the third polar ice cap , 2009 .
[47] G. Hegerl,et al. Understanding and Attributing Climate Change , 2007 .
[48] J. Hansen,et al. Earth's Energy Imbalance: Confirmation and Implications , 2005, Science.
[49] R. Bleck,et al. Multi-century simulations with the coupled GISS–HYCOM climate model: control experiments , 2006 .
[50] David Rind,et al. Comparison of Model and Observed Regional Temperature Changes During the Past 40 Years , 2000 .
[51] Paul J. Valdes,et al. Earth system sensitivity inferred from Pliocene modelling and data , 2010 .
[52] J. Kay,et al. The Arctic’s rapidly shrinking sea ice cover: a research synthesis , 2012, Climatic Change.
[53] R. Knutti,et al. Constraints on the transient climate response from observed global temperature and ocean heat uptake , 2008 .
[54] J. Lamarque,et al. Attribution of historical ozone forcing to anthropogenic emissions , 2013 .
[55] J. Hansen,et al. Sea-ice and North Atlantic climate response to CO2-induced warming and cooling conditions , 2006, Journal of Glaciology.
[56] M. Holland,et al. Constraining projections of summer Arctic sea ice , 2012 .
[57] W. G. Strand,et al. How Much More Global Warming and Sea Level Rise? , 2005, Science.
[58] M. Kainuma,et al. An emission pathway for stabilization at 6 Wm−2 radiative forcing , 2011 .
[59] J. Edmonds,et al. RCP4.5: a pathway for stabilization of radiative forcing by 2100 , 2011 .
[60] G. Schmidt,et al. The Goldilocks abrupt climate change event , 2005 .
[61] P. Gent,et al. Isopycnal mixing in ocean circulation models , 1990 .
[62] J. Curry,et al. The implications for climate sensitivity of AR5 forcing and heat uptake estimates , 2015, Climate Dynamics.
[63] J. Hansen,et al. CMIP5 historical simulations (1850–2012) with GISS ModelE2 , 2014 .
[64] Robert Burgman,et al. Observational and Model Evidence for Positive Low-Level Cloud Feedback , 2009, Science.
[65] J. Lamarque,et al. Interactive ozone and methane chemistry in GISS-E2 historical and future climate simulations , 2012 .
[66] Nadine Unger,et al. Simulations of preindustrial, present-day, and 2100 conditions in the NASA GISS composition and climate model G-PUCCINI , 2006 .
[67] N. Meinshausen,et al. Greenhouse-gas emission targets for limiting global warming to 2 °C , 2009, Nature.
[68] S. Twomey. The Influence of Pollution on the Shortwave Albedo of Clouds , 1977 .
[69] Karl E. Taylor,et al. An overview of CMIP5 and the experiment design , 2012 .
[70] J. Lelieveld,et al. A 1°×1° resolution data set of historical anthropogenic trace gas emissions for the period 1890–1990 , 2001 .
[71] G. Schmidt,et al. Coupled Aerosol-Chemistry-Climate Twentieth-Century Transient Model Investigation: Trends in Short-Lived Species and Climate Responses , 2011 .
[72] D. Streets,et al. A technology‐based global inventory of black and organic carbon emissions from combustion , 2004 .
[73] B. Stevens,et al. Atmospheric component of the MPI‐M Earth System Model: ECHAM6 , 2013 .