Terrestrial ecosystem model performance in simulating productivity and its vulnerability to climate change in the northern permafrost region
暂无分享,去创建一个
Philippe Ciais | Dennis P. Lettenmaier | Benjamin Smith | Jianyang Xia | Duoying Ji | Tomohiro Hajima | David M. Lawrence | Bertrand Decharme | Shushi Peng | Gerhard Krinner | Annette Rinke | Charles D. Koven | Isabelle Gouttevin | Theodore J. Bohn | Liming Yan | Zheng Shi | Lifen Jiang | Yiqi Luo | John C. Moore | Xiaodong Chen | Daniel J. Hayes | Paul A. Miller | Kazuyuki Saito | Wenxin Zhang | D. Lawrence | Benjamin Smith | D. Lettenmaier | A. McGuire | D. Hayes | G. Krinner | C. Delire | S. Peng | C. Koven | D. Ji | Guangsheng Chen | T. Bohn | R. Alkama | Yiqi Luo | B. Decharme | I. Gouttevin | P. Miller | Wenxing Zhang | A. MacDougall | E. Burke | P. Ciais | J. Xia | Liming Yan | Xiaodong Chen | A. Rinke | T. Hajima | Qian Zhang | Eleanor J. Burke | A. David McGuire | Christine Delire | Kazuyuki Saito | T. Sueyoshi | Guangsheng Chen | Andrew H. MacDougall | Ramdane Alkama | Kun Huang | Tetsuo Sueyoshi | Junyi Liang | Qian Zhang | Lifen Jiang | Kun Huang | Junyi Liang | Z. Shi | J. Moore | Guangsheng Chen
[1] David Medvigy,et al. Non-linear response of vegetation to coherent warming over northern high latitudes , 2013 .
[2] Xiaomin Sun,et al. Geographical statistical assessments of carbon fluxes in terrestrial ecosystems of China: Results from upscaling network observations , 2014 .
[3] Shaopeng Wang,et al. Forest annual carbon cost: a global-scale analysis of autotrophic respiration. , 2010, Ecology.
[4] Susan M. Natali,et al. Increased plant productivity in Alaskan tundra as a result of experimental warming of soil and permafrost , 2012 .
[5] A. Richardson,et al. Steeper declines in forest photosynthesis than respiration explain age-driven decreases in forest growth , 2014, Proceedings of the National Academy of Sciences.
[6] C. Körner,et al. Growth responses of an alpine grassland to elevated CO2 , 2004, Oecologia.
[7] P. Ciais,et al. Europe-wide reduction in primary productivity caused by the heat and drought in 2003 , 2005, Nature.
[8] E. Kruger,et al. Trends in seedling growth and carbon‐use efficiency vary among broadleaf tree species along a latitudinal transect in eastern North America , 2014, Global change biology.
[9] P. Blanken,et al. Joint control of terrestrial gross primary productivity by plant phenology and physiology , 2015, Proceedings of the National Academy of Sciences.
[10] Robert D. Hollister,et al. RESPONSES OF TUNDRA PLANTS TO EXPERIMENTAL WARMING:META‐ANALYSIS OF THE INTERNATIONAL TUNDRA EXPERIMENT , 1999 .
[11] W. Oechel,et al. FLUXNET: A New Tool to Study the Temporal and Spatial Variability of Ecosystem-Scale Carbon Dioxide, Water Vapor, and Energy Flux Densities , 2001 .
[12] M. G. Ryan,et al. Carbon allocation in forest ecosystems , 2007 .
[13] F. Stuart Chapin,et al. The Nature of Nutrient Limitation in Plant Communities , 1986, The American Naturalist.
[14] I. C. Prentice,et al. A dynamic global vegetation model for studies of the coupled atmosphere‐biosphere system , 2005 .
[15] R. B. Jackson,et al. Progressive nitrogen limitation of ecosystem processes under elevated CO2 in a warm-temperate forest. , 2006, Ecology.
[16] Compton J. Tucker,et al. Recent Declines in Warming and Vegetation Greening Trends over Pan-Arctic Tundra , 2013, Remote. Sens..
[17] S. Hsu,et al. Spatiotemporal variations of nitrogen isotopic records in the Arabian Sea , 2014 .
[18] Robert W. Howarth,et al. Nitrogen limitation on land and in the sea: How can it occur? , 1991 .
[19] P. Ciais,et al. Fertile forests produce biomass more efficiently. , 2012, Ecology letters.
[20] Walter Jetz,et al. A global, remote sensing‐based characterization of terrestrial habitat heterogeneity for biodiversity and ecosystem modelling , 2015 .
[21] A. Bondeau,et al. Comparing global models of terrestrial net primary productivity (NPP): overview and key results , 1999 .
[22] Wolfgang Knorr,et al. Annual and interannual CO2 exchanges of the terrestrial biosphere: process-based simulations and uncertainties , 2000 .
[23] Y. Xue,et al. Terrestrial biosphere models need better representation of vegetation phenology: results from the North American Carbon Program Site Synthesis , 2012 .
[24] Pierre Friedlingstein,et al. Uncertainties in CMIP5 Climate Projections due to Carbon Cycle Feedbacks , 2014 .
[25] F. Woodward,et al. Terrestrial Gross Carbon Dioxide Uptake: Global Distribution and Covariation with Climate , 2010, Science.
[26] Dario Papale,et al. Temporal variability of the NPP-GPP ratio at seasonal and interannual time scales in a temperate beech forest , 2011 .
[27] W. Knorr,et al. Quantifying photosynthetic capacity and its relationship to leaf nitrogen content for global‐scale terrestrial biosphere models , 2009 .
[28] Christian Körner,et al. Moving beyond photosynthesis: from carbon source to sink-driven vegetation modeling. , 2014, The New phytologist.
[29] Markus Reichstein,et al. CO2 balance of boreal, temperate, and tropical forests derived from a global database , 2007 .
[30] Jonathan M. Adams,et al. Global pattern of NPP to GPP ratio derived from MODIS data: effects of ecosystem type, geographical location and climate , 2009 .
[31] Peter M. Cox,et al. Description of the "TRIFFID" Dynamic Global Vegetation Model , 2001 .
[32] Anja Rammig,et al. Model-data synthesis for the next generation of forest free-air CO2 enrichment (FACE) experiments. , 2016, The New phytologist.
[33] Chunhua Zhang,et al. Variations in net primary productivity and its relationships with warming climate in the permafrost zone of the Tibetan Plateau , 2015, Journal of Geographical Sciences.
[34] M. Wimberly,et al. Climate‐driven global changes in carbon use efficiency , 2014 .
[35] Christoph Heinze,et al. Evaluation of the carbon cycle components in the Norwegian Earth System Model (NorESM) , 2012 .
[36] P. Jones,et al. Updated high‐resolution grids of monthly climatic observations – the CRU TS3.10 Dataset , 2014 .
[37] Charles D. Koven,et al. Analysis of Permafrost Thermal Dynamics and Response to Climate Change in the CMIP5 Earth System Models , 2013 .
[38] F. Stuart Chapin,et al. THE RESPONSE OF TUNDRA PLANT BIOMASS, ABOVEGROUND PRODUCTION, NITROGEN, AND CO2 FLUX TO EXPERIMENTAL WARMING , 1998 .
[39] W. Cohen,et al. Evaluation of MODIS NPP and GPP products across multiple biomes. , 2006 .
[40] D. Lawrence,et al. Assessment of model estimates of land-atmosphere CO 2 exchange across Northern Eurasia , 2014 .
[41] R. Dargaville,et al. Carbon cycling in extratropical terrestrial ecosystems of the Northern Hemisphere during the 20th century: a modeling analysis of the influences of soil thermal dynamics , 2003 .
[42] Ulrike Groemping,et al. Relative Importance for Linear Regression in R: The Package relaimpo , 2006 .
[43] Interactive comment on “ Simulated high-latitude soil thermal dynamics during the past four decades ” by S . , 2015 .
[44] T. A. Black,et al. Thermal optimality of net ecosystem exchange of carbon dioxide and underlying mechanisms. , 2012, The New phytologist.
[45] P. Reich,et al. Irradiance, temperature and rainfall influence leaf dark respiration in woody plants: evidence from comparisons across 20 sites. , 2006, The New phytologist.
[46] R. Prinn,et al. An analysis of the carbon balance of the Arctic Basin from 1997 to 2006 , 2010 .
[47] Michael Obersteiner,et al. Nutrient availability as the key regulator of global forest carbon balance , 2014 .
[48] Evan H. DeLucia,et al. Forest carbon use efficiency: is respiration a constant fraction of gross primary production? , 2007 .
[49] R. Dickinson,et al. The Common Land Model , 2003 .
[50] C. Körner,et al. The responses of alpine grassland to four seasons of CO2 enrichment: a synthesis , 1997 .
[51] D. Lawrence,et al. Permafrost carbon−climate feedback is sensitive to deep soil carbon decomposability but not deep soil nitrogen dynamics , 2015, Proceedings of the National Academy of Sciences.
[52] W. Jetz,et al. Relative roles of ecological and energetic constraints, diversification rates and region history on global species richness gradients. , 2015, Ecology letters.
[53] 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 .
[54] Roberta E. Martin,et al. Global variability in leaf respiration in relation to climate, plant functional types and leaf traits. , 2015, The New phytologist.
[55] Scott J. Goetz,et al. Satellite observations of high northern latitude vegetation productivity changes between 1982 and 2008: ecological variability and regional differences , 2011 .
[56] Jianyang Xia,et al. Photosynthetic overcompensation under nocturnal warming enhances grassland carbon sequestration. , 2009, Ecology.
[57] W. Oechel,et al. Carbon balance in tussock tundra under ambient and elevated atmospheric CO2 , 1990, Oecologia.
[58] Zong-Liang Yang,et al. Technical description of version 4.5 of the Community Land Model (CLM) , 2013 .
[59] A. McGuire,et al. Is the northern high‐latitude land‐based CO2 sink weakening? , 2011 .
[60] T. Vesala,et al. Towards a standardized processing of Net Ecosystem Exchange measured with eddy covariance technique: algorithms and uncertainty estimation , 2006 .
[61] W. Parton,et al. Progressive Nitrogen Limitation of Ecosystem Responses to Rising Atmospheric Carbon Dioxide , 2004 .
[62] A. Ito,et al. Uncertainty of Concentration–Terrestrial Carbon Feedback in Earth System Models* , 2014 .
[63] L. Aragão,et al. Shifts in plant respiration and carbon use efficiency at a large-scale drought experiment in the eastern Amazon. , 2010, The New phytologist.
[64] Russell K. Monson,et al. Terrestrial Carbon Cycle: Climate Relations in Eight CMIP5 Earth System Models , 2013 .
[65] A. Arneth,et al. Global patterns of land-atmosphere fluxes of carbon dioxide, latent heat, and sensible heat derived from eddy covariance, satellite, and meteorological observations , 2011 .
[66] J. Xia,et al. global patterns of the responses of leaf-level photosynthesis and respiration in terrestrial plants to experimental warming , 2013 .
[67] R. Reichle,et al. Spring hydrology determines summer net carbon uptake in northern ecosystems , 2014 .
[68] Christian Körner,et al. No growth stimulation by CO2 enrichment in alpine glacier forefield plants , 2012 .
[69] Yusheng Yang,et al. Allocation of gross primary production in forest ecosystems: allometric constraints and environmental responses. , 2013, The New phytologist.
[70] S. Running,et al. Global evaluation of MTCLIM and related algorithms for forcing of ecological and hydrological models , 2013 .
[71] 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.
[72] Philippe Ciais,et al. Terrestrial biosphere model performance for inter‐annual variability of land‐atmosphere CO2 exchange , 2012 .
[73] S. Hagemann,et al. Vulnerability of Permafrost Carbon to Climate Change: Implications for the Global Carbon Cycle , 2008 .
[74] P. Sen,et al. Introduction to bivariate and multivariate analysis , 1981 .
[75] P. Ciais,et al. Terrestrial carbon cycle affected by non-uniform climate warming , 2014 .
[76] Jerry M. Melillo,et al. The Role of Nitrogen in the Response of Forest Net Primary Production to Elevated Atmospheric Carbon Dioxide , 1995 .
[77] Shingo Watanabe. MIROC-ESM : model description and basic results of CMIP 5-20 c 3 m experiments , 2011 .
[78] P. Ciais,et al. Biomass production efficiency controlled by management in temperate and boreal ecosystems , 2015 .
[79] R. Macdonald,et al. Sensitivity of the carbon cycle in the Arctic to climate change , 2009 .
[80] L. Gough,et al. Respiratory flexibility and efficiency are affected by simulated global change in Arctic plants. , 2013, The New phytologist.
[81] Jianyang Xia,et al. Climate warming and biomass accumulation of terrestrial plants: a meta-analysis. , 2010, The New phytologist.
[82] X. Lee,et al. Overview of ChinaFLUX and evaluation of its eddy covariance measurement , 2006 .
[83] J. Randerson,et al. Causes of variation in soil carbon simulations from CMIP5 Earth system models and comparison with observations , 2012 .
[84] 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.
[85] Jean-Louis Roujean,et al. Ability of the land surface model ISBA‐A‐gs to simulate leaf area index at the global scale: Comparison with satellites products , 2006 .
[86] M. Lomas,et al. Evaluation of terrestrial carbon cycle models for their response to climate variability and to CO2 trends , 2013, Global change biology.
[87] Lanning Wang,et al. Description and basic evaluation of BNU-ESM version 1 , 2014 .
[88] Stephen Sitch,et al. Simulated resilience of tropical rainforests to CO2-induced climate change , 2013 .
[89] P. Cox,et al. Evaluating the Land and Ocean Components of the Global Carbon Cycle in the CMIP5 Earth System Models , 2013 .
[90] Benjamin Smith,et al. Representation of vegetation dynamics in the modelling of terrestrial ecosystems: comparing two contrasting approaches within European climate space , 2008 .
[91] K. Schaefer,et al. The impact of the permafrost carbon feedback on global climate , 2014 .
[92] Christ ian K6rner. Growth responses of an alpine grassland to elevated CO 2 , 2022 .
[93] Ian J. Wright,et al. Leaf phosphorus influences the photosynthesis–nitrogen relation: a cross-biome analysis of 314 species , 2009, Oecologia.
[94] Hong S. He,et al. Determining Relative Contributions of Vegetation and Topography to Burn Severity from LANDSAT Imagery , 2013, Environmental Management.
[95] Jeffrey M. Warren,et al. CO2 enhancement of forest productivity constrained by limited nitrogen availability , 2010, Proceedings of the National Academy of Sciences.
[96] Yiqi Luo,et al. Photosynthesis, respiration, and net primary production of sunflower stands in ambient and elevated atmospheric CO2 concentrations: an invariant NPP:GPP ratio? , 2000 .
[97] D. Lawrence,et al. Variability in the sensitivity among model simulations of permafrost and carbon dynamics in the permafrost region between 1960 and 2009 , 2016 .
[98] K.,et al. Carbon–Concentration and Carbon–Climate Feedbacks in CMIP5 Earth System Models , 2012 .
[99] Philippe Ciais,et al. Benchmarking the seasonal cycle of CO2 fluxes simulated by terrestrial ecosystem models , 2015 .
[100] W. J. Shuttleworth,et al. Creation of the WATCH Forcing Data and Its Use to Assess Global and Regional Reference Crop Evaporation over Land during the Twentieth Century , 2011 .
[101] W. Oechel,et al. Effects of CO2 enrichment and nutrition on growth, photosynthesis, and nutrient concentration of Alaskan tundra plant species , 1986 .
[102] P. Ciais,et al. Permafrost carbon-climate feedbacks accelerate global warming , 2011, Proceedings of the National Academy of Sciences.
[103] T. D. Mitchell,et al. An improved method of constructing a database of monthly climate observations and associated high‐resolution grids , 2005 .
[104] Dennis P. Lettenmaier,et al. Methane emissions from western Siberian wetlands: heterogeneity and sensitivity to climate change , 2007 .
[105] P. Cox,et al. Observing terrestrial ecosystems and the carbon cycle from space , 2015, Global change biology.
[106] Belinda E. Medlyn,et al. Satellite based estimates underestimate the effect of CO2 fertilization on net primary productivity , 2016 .
[107] Oliver Sonnentag,et al. On the relationship between water table depth and water vapor and carbon dioxide fluxes in a minerotrophic fen , 2009 .
[108] Hisashi Sato,et al. SEIB–DGVM: A new Dynamic Global Vegetation Model using a spatially explicit individual-based approach , 2007 .
[109] P. Reich,et al. Correlations among leaf traits provide a significant constraint on the estimate of global gross primary production , 2012 .
[110] S. Seneviratne,et al. Hydrological and biogeochemical constraints on terrestrial carbon cycle feedbacks , 2017 .
[111] Nathan P. Gillett,et al. Natural and anthropogenic climate change: incorporating historical land cover change, vegetation dynamics and the global carbon cycle , 2004 .
[112] P. Meir,et al. Improving representation of leaf respiration in large-scale predictive climate-vegetation models. , 2014, The New phytologist.
[113] C. Körner. Carbon limitation in trees , 2003 .
[114] P. Cox,et al. The Joint UK Land Environment Simulator (JULES), model description – Part 2: Carbon fluxes and vegetation dynamics , 2011 .
[115] T. Crowther,et al. Carbon use efficiency and storage in terrestrial ecosystems. , 2013, The New phytologist.
[116] Yanhong Tang,et al. Altitude and temperature dependence of change in the spring vegetation green-up date from 1982 to 2006 in the Qinghai-Xizang Plateau , 2011 .
[117] D. M. Lawrence,et al. Climate change and the permafrost carbon feedback , 2014, Nature.
[118] E. Wood,et al. Development of a 50-Year High-Resolution Global Dataset of Meteorological Forcings for Land Surface Modeling , 2006 .
[119] Steven W. Running,et al. User's Guide Daily GPP and Annual NPP (MOD17A2/A3) Products NASA Earth Observing System MODIS Land Algorithm , 2015 .
[120] Ke Zhang,et al. Numerical Terradynamic Simulation Group 9-2008 Satellite-based model detection of recent climate-driven changes in northern high-latitude vegetation productivity , 2018 .
[121] P. Reich,et al. Nitrogen limitation constrains sustainability of ecosystem response to CO2 , 2006, Nature.
[122] Edward B. Rastetter,et al. Modelling carbon responses of tundra ecosystems to historical and projected climate: a comparison of a plot‐ and a global‐scale ecosystem model to identify process‐based uncertainties , 2000, Global change biology.
[123] Dennis P. Lettenmaier,et al. Modeling the large-scale effects of surface moisture heterogeneity on wetland carbon fluxes in the West Siberian Lowland , 2013 .
[124] F. Stuart Chapin,et al. Responses of Arctic Tundra to Experimental and Observed Changes in Climate , 1995 .
[125] Xiangming Xiao,et al. Equilibrium responses of global net primary production and carbon storage to doubled atmospheric carbon dioxide: Sensitivity to changes in vegetation nitrogen concentration , 1997 .
[126] E. Parfenova,et al. The effects of climate, permafrost and fire on vegetation change in Siberia in a changing climate , 2009 .
[127] D. Lawrence,et al. Simulated high-latitude soil thermal dynamics during the past 4 decades , 2015 .