Improving canopy processes in the Community Land Model version 4 (CLM4) using global flux fields empirically inferred from FLUXNET data
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Markus Reichstein | Keith W. Oleson | Martin Jung | David M. Lawrence | Gordon B. Bonan | Sean Swenson | D. Lawrence | K. Oleson | G. Bonan | S. Swenson | S. Levis | M. Reichstein | M. Jung | P. Lawrence | Peter J. Lawrence | Samuel Levis
[1] P. Cox,et al. Impact of changes in diffuse radiation on the global land carbon sink , 2009, Nature.
[2] M. Werger,et al. Canopy structure and leaf nitrogen distribution in a stand of Lysimachia vulgaris L. as influenced by stand density , 1988, Oecologia.
[3] W. Knorr,et al. Quantifying photosynthetic capacity and its relationship to leaf nitrogen content for global‐scale terrestrial biosphere models , 2009 .
[4] Yoshiko Kosugi,et al. Parameterization of the CO2 and H2O gas exchange of several temperate deciduous broad‐leaved trees at the leaf scale considering seasonal changes , 2003 .
[5] B. Bonan,et al. A Land Surface Model (LSM Version 1.0) for Ecological, Hydrological, and Atmospheric Studies: Technical Description and User's Guide , 1996 .
[6] D. Baldocchi,et al. Seasonal trends in photosynthetic parameters and stomatal conductance of blue oak (Quercus douglasii) under prolonged summer drought and high temperature. , 2003, Tree physiology.
[7] J. R. Evans. Photosynthetic Acclimation and Nitrogen Partitioning Within a Lucerne Canopy. I. Canopy Characteristics , 1993 .
[8] Y. Malhi,et al. Modelling Amazonian forest eddy covariance data: a comparison of big leaf versus sun/shade models for the C-14 tower at Manaus I. Canopy photosynthesis , 2006 .
[9] I. E. Woodrow,et al. A Model Predicting Stomatal Conductance and its Contribution to the Control of Photosynthesis under Different Environmental Conditions , 1987 .
[10] Ray Leuning,et al. Temperature dependence of two parameters in a photosynthesis model , 2002 .
[11] U. Niinemets,et al. Photosynthesis and resource distribution through plant canopies. , 2007, Plant, cell & environment.
[12] Carl J. Bernacchi,et al. Improved temperature response functions for models of Rubisco‐limited photosynthesis , 2001 .
[13] G. Lemaire,et al. N uptake and distribution in crops: an agronomical and ecophysiological perspective. , 2002, Journal of experimental botany.
[14] R. Dickinson,et al. The Community Land Model and Its Climate Statistics as a Component of the Community Climate System Model , 2006 .
[15] J. Tenhunen,et al. Annual and seasonal variations in photosynthetic capacity of Fagus crenata along an elevation gradient in the Naeba Mountains, Japan. , 2008, Tree physiology.
[16] J. Goudriaan,et al. Modelling Potential Crop Growth Processes , 1994, Current Issues in Production Ecology.
[17] Dennis D. Baldocchi,et al. Leaf age affects the seasonal pattern of photosynthetic capacity and net ecosystem exchange of carbon in a deciduous forest , 2001 .
[18] D. Hollinger. Optimality and nitrogen allocation in a tree canopy. , 1996, Tree physiology.
[19] G. Bonan. Forests and Climate Change: Forcings, Feedbacks, and the Climate Benefits of Forests , 2008, Science.
[20] F. Woodward,et al. Terrestrial Gross Carbon Dioxide Uptake: Global Distribution and Covariation with Climate , 2010, Science.
[21] Liming Zhou,et al. Sensitivity of simulated terrestrial carbon assimilation and canopy transpiration to different stomatal conductance and carbon assimilation schemes , 2011 .
[22] G. Collatz,et al. Parameterization and testing of a coupled photosynthesis-stomatal conductance model for boreal trees. , 1998, Tree physiology.
[23] D. Pury,et al. Simple scaling of photosynthesis from leaves to canopies without the errors of big‐leaf models , 1997 .
[24] James F. Reynolds,et al. Modelling photosynthesis of cotton grown in elevated CO2 , 1992 .
[25] Dennis D. Baldocchi,et al. Modeling CO2 and water vapor exchange of a temperate broadleaved forest across hourly to decadal time scales , 2001 .
[26] A. Bondeau,et al. Towards global empirical upscaling of FLUXNET eddy covariance observations: validation of a model tree ensemble approach using a biosphere model , 2009 .
[27] J. Randerson,et al. Systematic assessment of terrestrial biogeochemistry in coupled climate–carbon models , 2009 .
[28] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[29] Gordon B. Bonan,et al. Quantifying carbon‐nitrogen feedbacks in the Community Land Model (CLM4) , 2010 .
[30] R. Schnur,et al. Climate-carbon cycle feedback analysis: Results from the C , 2006 .
[31] R. Rabbinge,et al. Dynamics of Vertical Leaf Nitrogen Distribution in a Vegetative Wheat Canopy. Impact on Canopy Photosynthesis , 2000 .
[32] E. Kowalczyk,et al. The CSIRO Atmosphere Biosphere Land Exchange (CABLE) model for use in climate models and as an offline model , 2006 .
[33] D. Lawrence,et al. Parameterization improvements and functional and structural advances in Version 4 of the Community Land Model , 2011 .
[34] M. Williams,et al. Improving land surface models with FLUXNET data , 2009 .
[35] G. Collatz,et al. Coupled Photosynthesis-Stomatal Conductance Model for Leaves of C4 Plants , 1992 .
[36] Federico Magnani,et al. Seasonal and interannual variability of photosynthetic capacity in relation to leaf nitrogen in a deciduous forest plantation in northern Italy. , 2005, Tree physiology.
[37] Stephen Sitch,et al. Modelling basin-wide variations in Amazon forest productivity – Part 1: Model calibration, evaluation and upscaling functions for canopy photosynthesis , 2009 .
[38] Andrew D. Friend,et al. Carbon and nitrogen cycle dynamics in the O‐CN land surface model: 1. Model description, site‐scale evaluation, and sensitivity to parameter estimates , 2010 .
[39] Stephen Sitch,et al. FLUXNET and modelling the global carbon cycle , 2007 .
[40] R. Leuning,et al. A two-leaf model for canopy conductance, photosynthesis and partitioning of available energy I:: Model description and comparison with a multi-layered model , 1998 .
[41] P. Reich,et al. Canopy structure and vertical patterns of photosynthesis and related leaf traits in a deciduous forest , 1993, Oecologia.
[42] T. Vesala,et al. Simulation and scaling of temporal variation in gross primary production for coniferous and deciduous temperate forests , 2004 .
[43] Antonio Donato Nobre,et al. Acclimation of photosynthetic capacity to irradiance in tree canopies in relation to leaf nitrogen concentration and leaf mass per unit area , 2002 .
[44] John Tenhunen,et al. A model separating leaf structural and physiological effects on carbon gain along light gradients for the shade‐tolerant species Acer saccharum , 1997 .
[45] D. Whitehead,et al. Seasonal variation in foliar carbon exchange in Pinus radiata and Populus deltoides: respiration acclimates fully to changes in temperature but photosynthesis does not , 2010 .
[46] Carl J. Bernacchi,et al. In vivo temperature response functions of parameters required to model RuBP-limited photosynthesis , 2003 .
[47] Peter R. J. North,et al. A sensitivity analysis of the land‐surface scheme JULES conducted for three forest biomes: Biophysical parameters, model processes, and meteorological driving data , 2006 .
[48] Markus Reichstein,et al. CO2 balance of boreal, temperate, and tropical forests derived from a global database , 2007 .
[49] Peter E. Thornton,et al. Technical Description of the Community Land Model (CLM) , 2004 .
[50] R. Ceulemans,et al. Gross primary production is stimulated for three Populus species grown under free‐air CO2 enrichment from planting through canopy closure , 2005 .
[51] Thomas D. Sharkey,et al. An improved model of C3 photosynthesis at high CO2: Reversed O2 sensitivity explained by lack of glycerate reentry into the chloroplast , 1991, Photosynthesis Research.
[52] R. Bonhomme,et al. Effect of 3D nitrogen, dry mass per area and local irradiance on canopy photosynthesis within leaves of contrasted heterogeneous maize crops. , 2004, Annals of botany.
[53] Nuno Carvalhais,et al. Comparing observations and process‐based simulations of biosphere‐atmosphere exchanges on multiple timescales , 2010 .
[54] Robert E. Dickinson,et al. A Two-Big-Leaf Model for Canopy Temperature, Photosynthesis, and Stomatal Conductance , 2004 .
[55] C. Field,et al. A reanalysis using improved leaf models and a new canopy integration scheme , 1992 .
[56] N. Kiang,et al. Land Surface Model Development for the GISS GCM: Effects of Improved Canopy Physiology on Simulated Climate , 2005 .
[57] Ü. Niinemets,et al. Responses of foliar photosynthetic electron transport, pigment stoichiometry, and stomatal conductance to interacting environmental factors in a mixed species forest canopy. , 1999, Tree physiology.
[58] Dennis D. Baldocchi,et al. Spatial and seasonal variability of photosynthetic parameters and their relationship to leaf nitrogen in a deciduous forest. , 2000, Tree physiology.
[59] Stan D. Wullschleger,et al. Biochemical Limitations to Carbon Assimilation in C3 Plants—A Retrospective Analysis of the A/Ci Curves from 109 Species , 1993 .
[60] S. Seneviratne,et al. Recent decline in the global land evapotranspiration trend due to limited moisture supply , 2010, Nature.
[61] A. Arneth,et al. Separation of net ecosystem exchange into assimilation and respiration using a light response curve approach: critical issues and global evaluation , 2010 .
[62] Alan K. Knapp,et al. Physiological Interactions Along Resource Gradients in a Tallgrass Prairie , 1991 .
[63] J. Kutzbach,et al. Calendar effect on phase study in paleoclimate transient simulation with orbital forcing , 2011 .
[64] D. Beerling,et al. A new technique for estimating rates of carboxylation and electron transport in leaves of C3 plants for use in dynamic global vegetation models , 1995 .
[65] Pierre Friedlingstein,et al. Comparing and evaluating process‐based ecosystem model predictions of carbon and water fluxes in major European forest biomes , 2005, Global change biology.
[66] Peter E. Thornton,et al. An Improved Canopy Integration Scheme for a Land Surface Model with Prognostic Canopy Structure , 2007 .
[67] T. Vesala,et al. Gross primary production simulation in a coniferous forest using a daily gas exchange model with seasonal change of leaf physiological parameters derived from remote sensing data , 2009 .
[68] K. Oleson,et al. Use of FLUXNET in the Community Land Model development , 2008 .
[69] J. Goudriaan,et al. Crop Micrometeorology: A Simulation Study , 1977 .
[70] K. Wilson,et al. How the environment, canopy structure and canopy physiological functioning influence carbon, water and energy fluxes of a temperate broad-leaved deciduous forest--an assessment with the biophysical model CANOAK. , 2002, Tree physiology.
[71] R. Dickinson,et al. The land surface climatology of the community land model coupled to the NCAR community climate model , 2002 .
[72] D. Randall,et al. A Revised Land Surface Parameterization (SiB2) for Atmospheric GCMS. Part I: Model Formulation , 1996 .
[73] W. Brand,et al. Optimisation of photosynthetic carbon gain and within-canopy gradients of associated foliar traits for Amazon forest trees , 2010 .
[74] T. Vesala,et al. Correlated change in normalized difference vegetation index and the seasonal trajectory of photosynthetic capacity in a conifer stand , 2009 .
[75] C. Justice,et al. A Revised Land Surface Parameterization (SiB2) for Atmospheric GCMS. Part II: The Generation of Global Fields of Terrestrial Biophysical Parameters from Satellite Data , 1996 .
[76] G. Collatz,et al. Physiological and environmental regulation of stomatal conductance, photosynthesis and transpiration: a model that includes a laminar boundary layer , 1991 .
[77] J. Randerson,et al. Technical Description of version 4.0 of the Community Land Model (CLM) , 2010 .
[78] D. Duclos. Effect of 3D Nitrogen, Dry Mass per Area and Local Irradiance on Canopy Photosynthesis Within Leaves of Contrasted Heterogeneous Maize Crops , 2004 .
[79] Peter E. Thornton,et al. Improvements to the Community Land Model and their impact on the hydrological cycle , 2008 .
[80] J. Goudriaan,et al. Modelling Potential Crop Growth Processes: Textbook with Exercises , 1994 .
[81] P. Sellers. Canopy reflectance, photosynthesis and transpiration , 1985 .
[82] Niels P. R. Anten,et al. Nitrogen distribution and leaf area indices in relation to photosynthetic nitrogen use efficiency in savanna grasses , 1998, Plant Ecology.
[83] M. Werger,et al. Maximizing daily canopy photosynthesis with respect to the leaf nitrogen allocation pattern in the canopy , 1987, Oecologia.
[84] Ü. Rannik,et al. Estimates of the annual net carbon and water exchange of forests: the EUROFLUX methodology , 2000 .
[85] S. V. Caemmerer,et al. Biochemical models of leaf photosynthesis. , 2000 .
[86] Gordon B. Bonan,et al. Land-atmosphere CO2 exchange simulated by a land surface process model coupled to an atmospheric general circulation model , 1995 .
[87] P. G. Jarvis,et al. Photosynthetic capacity in a central Amazonian rain forest. , 2000, Tree physiology.