Comprehensive ecosystem model‐data synthesis using multiple data sets at two temperate forest free‐air CO2 enrichment experiments: Model performance at ambient CO2 concentration
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Atul K. Jain | Peter E. Thornton | Mark R. Lomas | Michael C. Dietze | Jeffrey M. Warren | Heather R. McCarthy | Anthony P. Walker | Shusen Wang | Yiqi Luo | Ensheng Weng | Colleen M. Iversen | I. C. Prentice | Chris Huntingford | Belinda E. Medlyn | Shinichi Asao | S. Zaehle | Thomas Hickler | Richard J. Norby | Ram Oren | Paul J. Hanson | Martin G. De Kauwe | I. Colin Prentice | William J. Parton | Ying-Ping Wang | David Wårlind | F. Woodward | M. Lomas | S. Zaehle | W. Parton | R. Norby | T. Hickler | M. Dietze | P. Thornton | Shusen Wang | Yiqi Luo | Ying‐ping Wang | R. Oren | B. Medlyn | C. Huntingford | D. Wårlind | A. Walker | M. D. De Kauwe | J. Warren | P. Hanson | H. McCarthy | C. Iversen | F. Ian Woodward | S. Asao | Ensheng Weng
[1] M. Lomas,et al. Fire at high latitudes: Data‐model comparisons and their consequences , 2013 .
[2] E. Kowalczyk,et al. The CSIRO Atmosphere Biosphere Land Exchange (CABLE) model for use in climate models and as an offline model , 2006 .
[3] James S. Clark,et al. Hydraulic time constants for transpiration of loblolly pine at a free-air carbon dioxide enrichment site. , 2013, Tree physiology.
[4] S. Running,et al. A continental phenology model for monitoring vegetation responses to interannual climatic variability , 1997 .
[5] Thuy Le Toan,et al. Bud‐burst modelling in Siberia and its impact on quantifying the carbon budget , 2005, Global change biology.
[6] S. Pacala,et al. A METHOD FOR SCALING VEGETATION DYNAMICS: THE ECOSYSTEM DEMOGRAPHY MODEL (ED) , 2001 .
[7] D. Ellsworth,et al. Temporal dynamics and spatial variability in the enhancement of canopy leaf area under elevated atmospheric CO2 , 2007 .
[8] Pierre Friedlingstein,et al. A global prognostic scheme of leaf onset using satellite data , 2000 .
[9] A. Strahler,et al. Climate controls on vegetation phenological patterns in northern mid‐ and high latitudes inferred from MODIS data , 2004 .
[10] Rachel M. Law,et al. A global model of carbon, nitrogen and phosphorus cycles for the terrestrial biosphere , 2009 .
[11] Yiqi Luo,et al. Relative information contributions of model vs. data to short- and long-term forecasts of forest carbon dynamics. , 2011, Ecological applications : a publication of the Ecological Society of America.
[12] H. Hasenauer,et al. Ecohydrologic impact of reduced stomatal conductance in forests exposed to elevated CO2 , 2011 .
[13] Atul K. Jain,et al. Forest water use and water use efficiency at elevated CO2: a model‐data intercomparison at two contrasting temperate forest FACE sites , 2013, Global change biology.
[14] K. Wilson,et al. OAK FOREST CARBON AND WATER SIMULATIONS: MODEL INTERCOMPARISONS AND EVALUATIONS AGAINST INDEPENDENT DATA , 2004 .
[15] Benjamin Smith,et al. Representation of vegetation dynamics in the modelling of terrestrial ecosystems: comparing two contrasting approaches within European climate space , 2008 .
[16] Andrew D Richardson,et al. Seasonal dynamics and age of stemwood nonstructural carbohydrates in temperate forest trees. , 2013, The New phytologist.
[17] T. Andrews,et al. Evaluating adjusted forcing and model spread for historical and future scenarios in the CMIP5 generation of climate models , 2013 .
[18] R. Dewar,et al. Soil processes dominate the long-term response of forest net primary productivity to increased temperature and atmospheric CO2 concentration. , 2000 .
[19] Charles T. Garten,et al. Litterfall 15N abundance indicates declining soil nitrogen availability in a free-air CO2 enrichment experiment. , 2011, Ecology.
[20] A. Mäkelä,et al. Within crown variation in the relationship between foliage biomass and sapwood area in jack pine. , 2011, Tree physiology.
[21] O. Sala,et al. FUNCTIONAL AND STRUCTURAL CONVERGENCE OF TEMPERATE GRASSLAND AND SHRUBLAND ECOSYSTEMS , 1998 .
[22] C. D. Keeling,et al. Atmospheric CO2 and 13CO2 Exchange with the Terrestrial Biosphere and Oceans from 1978 to 2000: Observations and Carbon Cycle Implications , 2005 .
[23] T. Kira,et al. A QUANTITATIVE ANALYSIS OF PLANT FORM-THE PIPE MODEL THEORY : I.BASIC ANALYSES , 1964 .
[24] R. B. Jackson,et al. Increases in the flux of carbon belowground stimulate nitrogen uptake and sustain the long-term enhancement of forest productivity under elevated CO₂. , 2011, Ecology letters.
[25] R. Norby,et al. Leaf dynamics of a deciduous forest canopy: no response to elevated CO2 , 2003, Oecologia.
[26] R. Oren,et al. Mycorrhizal and rhizomorph dynamics in a loblolly pine forest during 5 years of free‐air‐CO2‐enrichment , 2008 .
[27] Ulf Dieckmann,et al. Modeling carbon allocation in trees: a search for principles. , 2012, Tree physiology.
[28] R. Siegwolf,et al. Carbon Flux and Growth in Mature Deciduous Forest Trees Exposed to Elevated CO2 , 2005, Science.
[29] R. Norby,et al. Elevated CO₂ enhances leaf senescence during extreme drought in a temperate forest. , 2011, Tree physiology.
[30] S. Gerber,et al. Land use change and nitrogen feedbacks constrain the trajectory of the land carbon sink , 2013 .
[31] R. Norby,et al. Sap velocity and canopy transpiration in a sweetgum stand exposed to free‐air CO2 enrichment (FACE) , 2001 .
[32] Dale W. Johnson. Progressive N limitation in forests: review and implications for long-term responses to elevated CO2. , 2006, Ecology.
[33] Benjamin Smith,et al. Robustness and uncertainty in terrestrial ecosystem carbon response to CMIP5 climate change projections , 2012 .
[34] R. Oren,et al. Canopy leaf area constrains [CO2]-induced enhancement of productivity and partitioning among aboveground carbon pools , 2006, Proceedings of the National Academy of Sciences.
[35] Markus Reichstein,et al. Analyzing the causes and spatial pattern of the European 2003 carbon flux anomaly using seven models , 2007 .
[36] Darren T. Drewry,et al. The Jena Diversity-Dynamic Global Vegetation Model (JeDi-DGVM): a diverse approach to representing t , 2012 .
[37] J. Nash,et al. River flow forecasting through conceptual models part I — A discussion of principles☆ , 1970 .
[38] Ray Leuning,et al. Diagnosing errors in a land surface model (CABLE) in the time and frequency domains , 2011 .
[39] Peter E. Thornton,et al. Influence of carbon‐nitrogen cycle coupling on land model response to CO2 fertilization and climate variability , 2007 .
[40] A. Guenther,et al. Dry nitrogen deposition estimates over a forest experiencing free air CO2 enrichment , 2007 .
[41] G. Katul,et al. Hydrologic balance in an intact temperate forest ecosystem under ambient and elevated atmospheric CO2 concentration , 2002 .
[42] Donald R. Zak,et al. Ecological Lessons from Free-Air CO2 Enrichment (FACE) Experiments , 2011 .
[43] Yadvinder Malhi,et al. Confronting model predictions of carbon fluxes with measurements of Amazon forests subjected to experimental drought. , 2013, The New phytologist.
[44] Markus Reichstein,et al. Improving canopy processes in the Community Land Model version 4 (CLM4) using global flux fields empirically inferred from FLUXNET data , 2011 .
[45] W. Brand,et al. Optimisation of photosynthetic carbon gain and within-canopy gradients of associated foliar traits for Amazon forest trees , 2010 .
[46] Q. Zhang,et al. Limitations of nitrogen and phosphorous on the terrestrial carbon uptake in the 20th century , 2011 .
[47] Atul K. Jain,et al. Modeling the effects of two different land cover change data sets on the carbon stocks of plants and soils in concert with CO2 and climate change , 2005 .
[48] Yiqi Luo,et al. Soil hydrological properties regulate grassland ecosystem responses to multifactor global change: A modeling analysis , 2008 .
[49] R. Norby,et al. CO2 enrichment increases carbon and nitrogen input from fine roots in a deciduous forest. , 2008, The New phytologist.
[50] M. G. Ryan,et al. The relationship between tree height and leaf area: sapwood area ratio , 2002, Oecologia.
[51] G. Asner,et al. Nitrogen Cycles: Past, Present, and Future , 2004 .
[52] Hyunseok Kim,et al. Temporal dynamics and spatial variability in the enhancement of canopy leaf area under elevated atmospheric CO 2 , 2007 .
[53] J. Paruelo,et al. How to evaluate models : Observed vs. predicted or predicted vs. observed? , 2008 .
[54] W. Parton,et al. A general model for soil organic matter dynamics: sensitivity to litter chemistry, texture and management. , 1994 .
[55] Jeffrey M. Warren,et al. CO2 enhancement of forest productivity constrained by limited nitrogen availability , 2010, Proceedings of the National Academy of Sciences.
[57] R. Norby,et al. Nitrogen uptake, distribution, turnover, and efficiency of use in a CO2-enriched sweetgum forest. , 2006, Ecology.
[58] Corinne Le Quéré,et al. Contributions to accelerating atmospheric CO2 growth from economic activity, carbon intensity, and efficiency of natural sinks , 2007, Proceedings of the National Academy of Sciences.
[59] R. McMurtrie,et al. Long-Term Response of Nutrient-Limited Forests to CO"2 Enrichment; Equilibrium Behavior of Plant-Soil Models. , 1993, Ecological applications : a publication of the Ecological Society of America.
[60] Mark West,et al. C4 grasses prosper as carbon dioxide eliminates desiccation in warmed semi-arid grassland , 2011, Nature.
[61] J. Berry,et al. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species , 1980, Planta.
[62] E. B. Rastetter,et al. Changes in C storage by terrestrial ecosystems: How C-N interactions restrict responses to CO2 and temperature , 1992 .
[63] R. Ceulemans,et al. Forest response to elevated CO2 is conserved across a broad range of productivity. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[64] Y. Xue,et al. Terrestrial biosphere models need better representation of vegetation phenology: results from the North American Carbon Program Site Synthesis , 2012 .
[65] G. Katul,et al. Soil fertility limits carbon sequestration by forest ecosystems in a CO2-enriched atmosphere , 2001, Nature.
[66] W. Knorr,et al. Quantifying photosynthetic capacity and its relationship to leaf nitrogen content for global‐scale terrestrial biosphere models , 2009 .
[67] Atul K. Jain,et al. Integration of nitrogen cycle dynamics into the Integrated Science Assessment Model for the study of terrestrial ecosystem responses to global change , 2009 .
[68] Frank Ewert,et al. Modelling plant responses to elevated CO2: how important is leaf area index? , 2004, Annals of botany.
[69] Kichiro Shinozaki,et al. A STATICAL MODEL OF PLANT FORM-FURTHER ANALYSIS OF THE PIPE MODEL THEORY , 1979 .
[70] Atul K. Jain,et al. Evaluation of 11 terrestrial carbon–nitrogen cycle models against observations from two temperate Free-Air CO2 Enrichment studies , 2014, The New phytologist.
[71] P. E. O'connell,et al. River flow forecasting through conceptual models part III - The Ray catchment at Grendon Underwood , 1970 .
[72] R. Oren,et al. Interaction of ice storms and management practices on current carbon sequestration in forests with potential mitigation under future CO2 atmosphere , 2006 .
[73] Thomas M. Smith,et al. A global land primary productivity and phytogeography model , 1995 .
[74] Peter E. Thornton,et al. An Improved Canopy Integration Scheme for a Land Surface Model with Prognostic Canopy Structure , 2007 .
[75] A. Classen,et al. Net mineralization of N at deeper soil depths as a potential mechanism for sustained forest production under elevated [CO2] , 2011 .
[76] J. Nagy,et al. A free‐air enrichment system for exposing tall forest vegetation to elevated atmospheric CO2 , 1999 .
[77] Atul K. Jain,et al. Where does the carbon go? A model–data intercomparison of vegetation carbon allocation and turnover processes at two temperate forest free-air CO2 enrichment sites , 2014, The New phytologist.
[78] M. Lomas,et al. Evaluation of terrestrial carbon cycle models for their response to climate variability and to CO2 trends , 2013, Global change biology.
[79] I. C. Prentice,et al. Evaluation of the terrestrial carbon cycle, future plant geography and climate‐carbon cycle feedbacks using five Dynamic Global Vegetation Models (DGVMs) , 2008 .
[80] Charles W. Cook,et al. Re-assessment of plant carbon dynamics at the Duke free-air CO(2) enrichment site: interactions of atmospheric [CO(2)] with nitrogen and water availability over stand development. , 2010, The New phytologist.
[81] J. Lamarque,et al. Nitrogen and sulfur deposition on regional and global scales: A multimodel evaluation , 2006 .
[82] R. Dewar,et al. New insights into carbon allocation by trees from the hypothesis that annual wood production is maximized. , 2013, The New phytologist.
[83] N. Scott,et al. Specific leaf area and nitrogen distribution in New Zealand forests: Species independently respond to intercepted light , 2006 .
[84] Jeffrey G. Arnold,et al. Model Evaluation Guidelines for Systematic Quantification of Accuracy in Watershed Simulations , 2007 .
[85] J. Randerson,et al. Technical Description of version 4.0 of the Community Land Model (CLM) , 2010 .
[86] Colleen,et al. Litterfall 15 N abundance indicates declining soil nitrogen availability in a free-air CO 2 enrichment experiment , 2011 .
[87] Atul K. Jain,et al. A model-data comparison of gross primary productivity: Results from the North American Carbon Program site synthesis , 2012 .
[88] T. A. Black,et al. A model‐data intercomparison of CO2 exchange across North America: Results from the North American Carbon Program site synthesis , 2010 .
[89] Philippe Ciais,et al. Terrestrial biosphere model performance for inter‐annual variability of land‐atmosphere CO2 exchange , 2012 .
[90] K. Pregitzer,et al. Forest productivity under elevated CO₂ and O₃: positive feedbacks to soil N cycling sustain decade-long net primary productivity enhancement by CO₂. , 2011, Ecology letters.
[91] S. Wofsy,et al. Mechanistic scaling of ecosystem function and dynamics in space and time: Ecosystem Demography model version 2 , 2009 .
[92] K. Rose,et al. Model goodness-of-fit analysis using regression and related techniques , 1995 .
[93] R. Norby,et al. Effects of elevated CO2 on nutrient cycling in a sweetgum plantation , 2004 .
[94] P. Ciais,et al. Influence of spring and autumn phenological transitions on forest ecosystem productivity , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[95] Finzi,et al. Net primary production of a forest ecosystem with experimental CO2 enrichment , 1999, Science.
[96] 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 .
[97] D. A. King,et al. Modelling forest response to increasing CO2 concentration under nutrient-limited conditions , 1994 .
[98] R. Schnur,et al. Climate-carbon cycle feedback analysis: Results from the C , 2006 .
[99] M. P.R.,et al. A METHOD FOR SCALING VEGETATION DYNAMICS: THE ECOSYSTEM DEMOGRAPHY MODEL (ED) , 2022 .
[100] I. C. Prentice,et al. A dynamic global vegetation model for studies of the coupled atmosphere‐biosphere system , 2005 .
[101] Robert Clement,et al. On the validation of models of forest CO2 exchange using eddy covariance data: some perils and pitfalls. , 2005, Tree physiology.
[102] 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 .
[103] G. Hurtt,et al. The contributions of land‐use change, CO2 fertilization, and climate variability to the Eastern US carbon sink , 2006 .
[104] Andrew E. Suyker,et al. Characterizing the performance of ecosystem models across time scales: A spectral analysis of the North American Carbon Program site-level synthesis , 2011, Journal of Geophysical Research.
[105] F. Woodward,et al. Vegetation dynamics – simulating responses to climatic change , 2004, Biological reviews of the Cambridge Philosophical Society.
[106] W. Parton,et al. ForCent model development and testing using the Enriched Background Isotope Study experiment , 2010 .
[107] Ross E. McMurtrie,et al. The temporal response of forest ecosystems to doubled atmospheric CO2 concentration , 1996 .
[108] R. Norby,et al. Allometric determination of tree growth in a CO2‐enriched sweetgum stand , 2001 .
[109] F. Woodward. Climate and plant distribution , 1987 .
[110] Pierre Friedlingstein,et al. The new IPSL climate system model: IPSL-CM4 , 2006 .
[111] A. Ellison,et al. Predicting the impact of hemlock woolly adelgid on carbon dynamics of eastern United States forests , 2010 .
[112] A. Granier,et al. Evaluation of transpiration in a Douglas-fir stand by means of sap flow measurements. , 1987, Tree physiology.
[113] Alexander P. Trishchenko,et al. Simulation of canopy radiation transfer and surface albedo in the EALCO model , 2007 .
[114] Shusen Wang,et al. Simulation of Evapotranspiration and Its Response to Plant Water and CO2Transfer Dynamics , 2008 .
[115] Ram Oren,et al. Analyses of assumptions and errors in the calculation of stomatal conductance from sap flux measurements. , 2000, Tree physiology.
[116] Simon Scheiter,et al. Next-generation dynamic global vegetation models: learning from community ecology. , 2013, The New phytologist.
[117] T. Tschaplinski,et al. CO2 Enrichment of a Deciduous Forest: The Oak Ridge FACE Experiment , 2006 .
[118] Corinne Le Quéré,et al. Trends in the sources and sinks of carbon dioxide , 2009 .