Climate-carbon cycle feedback analysis: Results from the C
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R. Schnur | R. Betts | V. Brovkin | K. Lindsay | P. Cox | F. Joos | A. Weaver | R. Betts | P. Friedlingstein | C. Jones | S. Doney | H. Matthews | M. Kawamiya | E. Roeckner | L. Bopp | I. Fung | W. Knorr | N. Zeng | P. Rayner | Tomomichi Kato | J. S. John | P. Cadule | W. Bloh | M. Eby | G. Bala | J. John | T. Raddatz | C. Reick | K. Schnitzler | K. Strassmann | C. Yoshikawa | G. Bala | R. Betts
[1] M. Monsi. Uber den Lichtfaktor in den Pflanzengesellschaften und seine Bedeutung fur die Stoffproduktion , 1953 .
[2] J. Hack,et al. Description of the NCAR Community Climate Model (CCM1) , 1987 .
[3] David M. Karl,et al. VERTEX: carbon cycling in the northeast Pacific , 1987 .
[4] I. E. Woodrow,et al. A Model Predicting Stomatal Conductance and its Contribution to the Control of Photosynthesis under Different Environmental Conditions , 1987 .
[5] R. Sepanski,et al. TRENDS '90: A compendium of data on global change , 1991 .
[6] G. Collatz,et al. Physiological and environmental regulation of stomatal conductance, photosynthesis and transpiration: a model that includes a laminar boundary layer , 1991 .
[7] W. Schlesinger,et al. The global carbon dioxide flux in soil respiration and its relationship to vegetation and climate , 1992 .
[8] A. McGuire,et al. Interactions between carbon and nitrogen dynamics in estimating net primary productivity for potential vegetation in North America , 1992 .
[9] G. Collatz,et al. Coupled Photosynthesis-Stomatal Conductance Model for Leaves of C4 Plants , 1992 .
[10] E. Rasmussen,et al. A most beautiful polar low. A case study of a polar low development in the Bear Island region , 1992 .
[11] J. Toggweiler,et al. Downward transport and fate of organic matter in the ocean: Simulations with a general circulation model , 1992 .
[12] Robert J. Scholes,et al. Observations and modeling of biomass and soil organic matter dynamics for the grassland biome worldwide , 1993 .
[13] E. Maier‐Reimer,et al. Geochemical cycles in an Ocean General Circulation Model , 1993 .
[14] J. Dukowicz,et al. Implicit free‐surface method for the Bryan‐Cox‐Semtner ocean model , 1994 .
[15] J. Lloyd,et al. On the temperature dependence of soil respiration , 1994 .
[16] P. Friedlingstein,et al. On the contribution of CO2 fertilization to the missing biospheric sink , 1995 .
[17] J. Randerson,et al. Global net primary production: Combining ecology and remote sensing , 1995 .
[18] I. C. Prentice,et al. An integrated biosphere model of land surface processes , 1996 .
[19] Katharina D. Six,et al. Effects of plankton dynamics on seasonal carbon fluxes in an ocean general circulation model , 1996 .
[20] B. Bonan,et al. The NCAR Land Surface Model (LSM Version 1.0) Coupled to the NCAR Community Climate Model , 1996 .
[21] Corinne Le Quéré,et al. An efficient and accurate representation of complex oceanic and biospheric models of anthropogenic carbon uptake , 1996 .
[22] John F. B. Mitchell,et al. The second Hadley Centre coupled ocean-atmosphere GCM: model description, spinup and validation , 1997 .
[23] Christopher B. Field,et al. The contribution of terrestrial sources and sinks to trends in the seasonal cycle of atmospheric carbon dioxide , 1997 .
[24] P. Delecluse,et al. OPA 8.1 Ocean General Circulation Model reference manual , 1998 .
[25] Marco A. Janssen,et al. The IMAGE User Support System. Global Change Scenarios from IMAGE 2.1 , 1998 .
[26] P. Gent,et al. The NCAR Climate System Model, Version One* , 1998 .
[27] Syukuro Manabe,et al. Simulated response of the ocean carbon cycle to anthropogenic climate warming , 1998, Nature.
[28] Lisa J. Graumlich,et al. Interactive Canopies for a Climate Model , 1998 .
[29] R. C. Malone,et al. Global eddy-resolving ocean simulations driven by 1985-1995 atmospheric winds , 1998 .
[30] P. Jones,et al. Representing Twentieth-Century Space–Time Climate Variability. Part I: Development of a 1961–90 Mean Monthly Terrestrial Climatology , 1999 .
[31] R. Betts,et al. The impact of new land surface physics on the GCM simulation of climate and climate sensitivity , 1999 .
[32] P. Friedlingstein,et al. Toward an allocation scheme for global terrestrial carbon models , 1999 .
[33] E. Maier‐Reimer,et al. Nutrient trapping in the equatorial Pacific: The ocean circulation solution , 1999 .
[34] Corinne Le Quéré,et al. Regional changes in carbon dioxide fluxes of land and oceans since 1980. , 2000, Science.
[35] Wolfgang Knorr,et al. Annual and interannual CO2 exchanges of the terrestrial biosphere: process-based simulations and uncertainties , 2000 .
[36] N. Zeng,et al. A Quasi-Equilibrium Tropical Circulation Model--Implementation and Simulation*. , 2000 .
[37] N. Zeng,et al. A Quasi-Equilibrium Tropical Circulation Model—Formulation * , 2000 .
[38] John F. B. Mitchell,et al. The simulation of SST, sea ice extents and ocean heat transports in a version of the Hadley Centre coupled model without flux adjustments , 2000 .
[39] Victor Brovkin,et al. CLIMBER-2: a climate system model of intermediate complexity. Part I: model description and performance for present climate , 2000 .
[40] Michael G. Ryan,et al. Evidence that decomposition rates of organic carbon in mineral soil do not vary with temperature , 2000, Nature.
[41] W. G. Strand,et al. Parallel climate model (PCM) control and transient simulations , 2000 .
[42] S. Levitus,et al. Warming of the World Ocean , 2000 .
[43] P. Jones,et al. Representing Twentieth-Century Space-Time Climate Variability. Part II: Development of 1901-96 Monthly Grids of Terrestrial Surface Climate , 2000 .
[44] Michael T. Coe,et al. Testing the performance of a dynamic global ecosystem model: Water balance, carbon balance, and vegetation structure , 2000 .
[45] R. Betts,et al. Acceleration of global warming due to carbon-cycle feedbacks in a coupled climate model , 2000, Nature.
[46] P. Cox,et al. Modeling the volcanic signal in the atmospheric CO2 record , 2001 .
[47] R. Houghton. Carbon Flux to the Atmosphere from Land-Use Changes: 1850 to 1990 , 2001 .
[48] A. Oschlies. Model-derived estimates of new production: New results point towards lower values , 2001 .
[49] Stephen Sitch,et al. Global warming feedbacks on terrestrial carbon uptake under the Intergovernmental Panel on Climate Change (IPCC) Emission Scenarios , 2001 .
[50] G. Ramstein,et al. Simulating the amplification of orbital forcing by ocean feedbacks in the last glaciation , 2001, Nature.
[51] J. Canadell,et al. Recent patterns and mechanisms of carbon exchange by terrestrial ecosystems , 2001, Nature.
[52] J. Dufresne,et al. Positive feedback between future climate change and the carbon cycle , 2001 .
[53] Peter M. Cox,et al. Description of the "TRIFFID" Dynamic Global Vegetation Model , 2001 .
[54] F. Woodward,et al. Global response of terrestrial ecosystem structure and function to CO2 and climate change: results from six dynamic global vegetation models , 2001 .
[55] Robert J. Scholes,et al. The Carbon Cycle and Atmospheric Carbon Dioxide , 2001 .
[56] Marika M. Holland,et al. The UVic earth system climate model: Model description, climatology, and applications to past, present and future climates , 2001, Data, Models and Analysis.
[57] Frank O. Bryan,et al. Improvements to the NCAR CSM-1 for Transient Climate Simulations , 2001 .
[58] I. Totterdell,et al. Production and export in a global ocean ecosystem model , 2001 .
[59] Yiqi Luo,et al. Acclimatization of soil respiration to warming in a tall grass prairie , 2001, Nature.
[60] Victor Brovkin,et al. Carbon cycle, vegetation, and climate dynamics in the Holocene: Experiments with the CLIMBER‐2 model , 2002 .
[61] Akihiko Ito,et al. A simulation model of the carbon cycle in land ecosystems (Sim-CYCLE) : A description based on dry-matter production theory and plot-scale validation , 2002 .
[62] J. Houghton,et al. Climate change 2001 : the scientific basis , 2001 .
[63] I. C. Prentice,et al. Climatic Control of the High-Latitude Vegetation Greening Trend and Pinatubo Effect , 2002, Science.
[64] Katrin J. Meissner,et al. The role of land surface dynamics in glacial inception: a study with the UVic Earth System Model , 2003 .
[65] K. Lindsay,et al. Global Ocean Carbon Cycle Modeling , 2003 .
[66] Mojib Latif,et al. The Max-Planck-Institute global ocean/sea ice model with orthogonal curvilinear coordinates , 2003 .
[67] N. Zeng. Glacial-interglacial atmospheric CO2 change —The glacial burial hypothesis , 2003 .
[68] M. Scholze,et al. Constraining temperature variations over the last millennium by comparing simulated and observed atmospheric CO2 , 2003 .
[69] Philippe Ciais,et al. How uncertainties in future climate change predictions translate into future terrestrial carbon fluxes , 2003 .
[70] Two decades of ocean CO2 sink and variability , 2003 .
[71] Richard Essery,et al. Strong carbon cycle feedbacks in a climate model with interactive CO2 and sulphate aerosols , 2003 .
[72] Stéphane Blain,et al. An ecosystem model of the global ocean including Fe, Si, P colimitations , 2003 .
[73] P. Cox,et al. Uncertainty in climate’carbon-cycle projections associated with the sensitivity of soil respiration to temperature , 2003 .
[74] P. Cox,et al. How positive is the feedback between climate change and the carbon cycle? , 2003 .
[75] M. Fasham,et al. Ocean biogeochemistry: the role of the ocean carbon cycle in global change , 2003 .
[76] D. Ellsworth,et al. Functional responses of plants to elevated atmospheric CO2– do photosynthetic and productivity data from FACE experiments support early predictions? , 2004 .
[77] K. Caldeira,et al. Quantifying the effects of CO2‐fertilized vegetation on future global climate and carbon dynamics , 2004 .
[78] V. Brovkin,et al. The importance of ocean temperature to global biogeochemistry , 2004 .
[79] Haifeng Qian,et al. How strong is carbon cycle‐climate feedback under global warming? , 2004 .
[80] R. Betts,et al. Amazonian forest dieback under climate-carbon cycle projections for the 21st century , 2004 .
[81] M. Webb,et al. Quantification of modelling uncertainties in a large ensemble of climate change simulations , 2004, Nature.
[82] R. Betts,et al. Using a GCM analogue model to investigate the potential for Amazonian forest dieback , 2004 .
[83] Nathan P. Gillett,et al. Natural and anthropogenic climate change: incorporating historical land cover change, vegetation dynamics and the global carbon cycle , 2004 .
[84] Hiroyasu Hasumi,et al. K-1 Coupled GCM (MIROC) Description , 2004 .
[85] Aixue Hu,et al. Factors Affecting Climate Sensitivity in Global Coupled Models , 2004 .
[86] Stephen Sitch,et al. Role of land cover changes for atmospheric CO2 increase and climate change during the last 150 years , 2004 .
[87] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[88] A. Mariotti,et al. Terrestrial mechanisms of interannual CO2 variability , 2005 .
[89] K. Caldeira,et al. Increase of carbon cycle feedback with climate sensitivity: results from a coupled climate and carbon cycle model , 2005 .
[90] A. Weaver,et al. Primary productivity control of simulated carbon cycle–climate feedbacks , 2005 .
[91] B. G. Ovindasamy,et al. Increase of carbon cycle feedback with climate sensitivity: results from a coupled climate and carbon cycle model , 2005 .
[92] I. C. Prentice,et al. A dynamic global vegetation model for studies of the coupled atmosphere‐biosphere system , 2005 .
[93] Akihiko Ito,et al. Climate-related uncertainties in projections of the twenty-first century terrestrial carbon budget: off-line model experiments using IPCC greenhouse-gas scenarios and AOGCM climate projections , 2005 .
[94] Michael J. Rogers,et al. Long-term sensitivity of soil carbon turnover to warming , 2005, Nature.
[95] J. Dufresne,et al. Contrasts in the effects on climate of anthropogenic sulfate aerosols between the 20th and the 21st century , 2005 .
[96] M. Claussen,et al. EMIC Intercomparison Project (EMIP–CO2): comparative analysis of EMIC simulations of climate, and of equilibrium and transient responses to atmospheric CO2 doubling , 2005 .
[97] K. Lindsay,et al. Evolution of carbon sinks in a changing climate. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[98] P. Cox,et al. Global climate change and soil carbon stocks; predictions from two contrasting models for the turnover of organic carbon in soil , 2005 .
[99] A. Weaver,et al. Terrestrial Carbon Cycle Dynamics under Recent and Future Climate Change , 2005 .
[100] E. Maier‐Reimer,et al. Sea‐to‐air CO2 flux from 1948 to 2003: A model study , 2005 .
[101] I. Totterdell,et al. The oceanic response to carbon emissions over the next century: investigation using three ocean carbon cycle models , 2005 .
[102] T. Matsuno,et al. Development of an Integrated Earth System Model on the Earth Simulator , 2005 .
[103] Bas Eickhout,et al. Impacts of future land cover changes on atmospheric CO2 and climate , 2005 .
[104] M. Monsi,et al. On the factor light in plant communities and its importance for matter production. 1953. , 2004, Annals of botany.
[105] Pierre Friedlingstein,et al. The new IPSL climate system model: IPSL-CM4 , 2006 .
[106] Scott C. Doney,et al. Natural Variability in a Stable, 1000-Yr Global Coupled Climate–Carbon Cycle Simulation , 2006 .
[107] S. Bony,et al. The LMDZ4 general circulation model: climate performance and sensitivity to parametrized physics with emphasis on tropical convection , 2006 .
[108] Michael Botzet,et al. Ocean Circulation and Tropical Variability in the Coupled Model ECHAM5/MPI-OM , 2006 .
[109] S S I T C H,et al. Evaluation of Ecosystem Dynamics, Plant Geography and Terrestrial Carbon Cycling in the Lpj Dynamic Global Vegetation Model , 2022 .