Equilibrium responses of global net primary production and carbon storage to doubled atmospheric carbon dioxide: Sensitivity to changes in vegetation nitrogen concentration
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Xiangming Xiao | Charles J Vörösmarty | Berrien Moore | Yude Pan | Annette L. Schloss | David W. Kicklighter | Jerry M. Melillo | Yude Pan | A. McGuire | J. Melillo | B. Moore | Xiangming Xiao | D. Kicklighter | C. Vorosmarty | A. Schloss | John V. K. Helfrich | A. David McGuire
[1] N. Myers. Tropical forests: Present status and future outlook , 1991, Climatic change.
[2] Christopher B. Field,et al. 2 – Ecological Scaling of Carbon Gain to Stress and Resource Availability , 1991 .
[3] Jerry M. Melillo,et al. The Role of Nitrogen in the Response of Forest Net Primary Production to Elevated Atmospheric Carbon Dioxide , 1995 .
[4] D. Schimel,et al. Greenhouse Gases: Sources and Sinks , 1992 .
[5] R. Houghton,et al. Changes in the landscape of Latin America between 1850 and 1985 I. Progressive loss of forests , 1991 .
[6] S. B. Idso,et al. Increasing atmospheric CO2: effects on crop yield, water use and climate , 1983 .
[7] David W. Kicklighter,et al. Tropical deforestation and the global carbon budget , 1996 .
[8] Corinne Le Quéré,et al. Limiting future atmospheric carbon dioxide , 1995 .
[9] David W. Kicklighter,et al. Equilibrium Responses of Soil Carbon to Climate Change: Empirical and Process-Based Estimates , 1995 .
[10] J. Houghton,et al. Climate change 1992 : the supplementary report to the IPCC scientific assessment , 1992 .
[11] G. S. Campbell,et al. Low temperature or low water potemntial effects on the mictobial decomposition of wheat residue , 1986 .
[12] 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 .
[13] H. Mooney,et al. PREDICTING ECOSYSTEM RESPONSES TO ELEVATED CO2 CONCENTRATIONS , 1991 .
[14] H. G. Miller. Forest Fertilization: Some Guiding Concepts , 1981 .
[15] R. Houghton,et al. Land-use change in the Soviet Union between 1850 and 1980: causes of a net release of CO2 to the atmosphere , 1988 .
[16] E. Rastetter,et al. Potential Net Primary Productivity in South America: Application of a Global Model. , 1991, Ecological applications : a publication of the Ecological Society of America.
[17] L. R. Auchmoody,et al. Response of Yellow-Poplar and Red Oak to Fertilization in West Virginia1 , 1977 .
[18] Richard D. Miller,et al. The Effect of Soil Moisture Tension on Carbon Dioxide Evolution, Nitrification, and Nitrogen Mineralization1 , 1964 .
[19] John Pastor,et al. Aboveground Production and N and P Cycling Along a Nitrogen Mineralization Gradient on Blackhawk Island, Wisconsin , 1984 .
[20] Yude Pan,et al. The importance of climate and soils for estimates of net primary production: a sensitivity analysis with the terrestrial ecosystem model , 1996 .
[21] F. Chapin,et al. Effect of Fertilizer on Production and Biomass of Tussock Tundra, Alaska, U.S.A. , 1986 .
[22] J. R. Evans,et al. Nitrogen and Photosynthesis in the Flag Leaf of Wheat (Triticum aestivum L.). , 1983, Plant physiology.
[23] G. Woodwell,et al. Biotic Feedbacks in the Global Climatic System , 1994 .
[24] John Doe,et al. Soil Map of the World , 1962 .
[25] 伊野 良夫. Experimental approach to calculation of CO2 amount evolved from several soils , 1967 .
[26] A. McGuire,et al. Responses of primary production and total carbon storage to changes in climate and atmospheric CO₂ concentration , 1995 .
[27] Boyd R. Strain,et al. Direct effects of increasing carbon dioxide on vegetation , 1985 .
[28] John F. Muratore,et al. Nitrogen and Lignin Control of Hardwood Leaf Litter Decomposition Dynamics , 1982 .
[29] R. Sage,et al. The Nitrogen Use Efficiency of C(3) and C(4) Plants: II. Leaf Nitrogen Effects on the Gas Exchange Characteristics of Chenopodium album (L.) and Amaranthus retroflexus (L.). , 1987, Plant physiology.
[30] P. Sollins,et al. The Internal Element Cycles of an Old‐Growth Douglas‐Fir Ecosystem in Western Oregon , 1980 .
[31] F. Chapin,et al. Production: Biomass Relationships and Element Cycling in Contrasting Arctic Vegetation Types , 1991 .
[32] W. Cramer,et al. The IIASA database for mean monthly values of temperature , 1991 .
[33] E. Rastetter,et al. Continental scale models of water balance and fluvial transport: An application to South America , 1989 .
[34] Vemap Participants. Vegetation/ecosystem modeling and analysis project: Comparing biogeography and biogeochemistry models in a continental-scale study of terrestrial ecosystem responses to climate change and CO2 doubling , 1995 .
[35] R. Ellis. Response of crop trees of sugar maple, white ash, and black cherry to release and fertilization , 1979 .
[36] R. F. Chandler,et al. The nitrogen nutrition and growth of certain deciduous trees of Northeastern United States, with a discussion of the principles and practice of leaf analysis as applied to forest trees. , 1939 .
[37] E. Paul,et al. ORGANIC CARBON DYNAMICS IN GRASSLAND SOILS. 1. BACKGROUND INFORMATION AND COMPUTER SIMULATION , 1981 .
[38] F. Beinroth. Relationships between U.S. soil taxonomy, the Brazilian soil classification system, and FAO/UNESCO [Food and Agriculture Organization/United Nations, Educational, Scientific and Cultural Organization] soil units , 1975 .
[39] P. Jarvis,et al. The Direct Effects of Increase in the Global Atmospheric CO2 Concentration on Natural and Commercial Temperate Trees and Forests , 1989 .
[40] H. William Hunt,et al. A Simulation Model for Decomposition in Grasslands , 1977 .
[41] W. Schlesinger. Biogeochemistry: An Analysis of Global Change , 1991 .
[42] James S. Clark,et al. Terrestrial biotic responses to environmental change and feedbacks to climate , 1996 .
[43] R. Amundson,et al. Rapid Exchange Between Soil Carbon and Atmospheric Carbon Dioxide Driven by Temperature Change , 1996, Science.
[44] John D. Aber,et al. Predicting the Effects of Rotation Length, Harvest Intensity, and Fertilization on Fiber Yield From Northern Hardwood Forests in New England , 1982 .
[45] Meinrat O. Andreae,et al. Atmospheric deposition and nutrient cycling. , 1989 .
[46] A. G. Norman,et al. The Threshold Moisture Content for Active Decomposition of Some Mature Plant Materials1 , 1947 .
[47] P. Risser,et al. Grassland Ecosystems of the World: Analysis of Grasslands and Their Uses (IBP 18) , 1980 .
[48] H. Jenny,et al. COMPARATIVE STUDY OF DECOMPOSITION RATES OF ORGANIC MATTER IN TEMPERATE AND TROPICAL REGIONS , 1949 .
[49] G. Woodwell,et al. Changes in the Carbon Content of Terrestrial Biota and Soils between 1860 and 1980: A Net Release of CO"2 to the Atmosphere , 1983 .
[50] F. Clark,et al. Soil moisture tension and microbiological activity , 1948 .
[51] F. S. Chapin,et al. Response to fertilization by various plant growth forms in an Alaskan tundra: nutrient accumulation and growth , 1980 .
[52] K. Cleve,et al. Response of 70-year-old white spruce to thinning and fertilization in interior Alaska , 1976 .
[53] S. Idso,et al. Plant responses to atmospheric CO2 enrichment in the face of environmental constraints: a review of the past 10 years' research , 1994 .
[54] Pamela A. Matson,et al. Nutrient limitations to plant growth during primary succession in Hawaii Volcanoes National Park , 1993 .
[55] D. Binkley,et al. Forest Nutrition Management , 1987, Forest Science.
[56] Thomas H. Painter,et al. Climatic, edaphic, and biotic controls over storage and turnover of carbon in soils , 1994 .
[57] E. Rastetter,et al. Aspects of spatial and temporal aggregation in estimating regional carbon dioxide fluxes from temperate forest soils , 1994 .
[58] F. Stuart Chapin,et al. The Nature of Nutrient Limitation in Plant Communities , 1986, The American Naturalist.
[59] R. T. Watson,et al. Greenhouse gases and aerosols , 1990 .
[60] R. Daubenmire,et al. Studies of the Decomposition Rates of Tree Litter , 1963 .
[61] Pamela A. Matson,et al. HUMAN APPROPRIATION OF THE PRODUCTS OF PHOTOSYNTHESIS , 1986 .
[62] B. Kimball. Carbon Dioxide and Agricultural Yield: An Assemblage and Analysis of 430 Prior Observations1 , 1983 .
[63] B. Turner. The Earth as Transformed by Human Action , 1988 .
[64] F. Chapin. 3 – Effects of Multiple Environmental Stresses on Nutrient Availability and Use , 1991 .
[65] W. Lauenroth,et al. Analysis of the Response of a Grassland Ecosystem to Stress , 1979 .
[66] A. McGuire,et al. Productivity response of climax temperate forests to elevated temperature and carbon dioxide: a north american comparison between two global models , 1993 .
[67] Syukuro Manabe,et al. Equilib-rium climate change ? and its implications for the future , 1990 .
[68] Robert W. Howarth,et al. Nitrogen limitation on land and in the sea: How can it occur? , 1991 .
[69] R. Sage,et al. The Nitrogen Use Efficiency of C(3) and C(4) Plants: I. Leaf Nitrogen, Growth, and Biomass Partitioning in Chenopodium album (L.) and Amaranthus retroflexus (L.). , 1987, Plant physiology.
[70] L. O. Safford,et al. Biomass and Nutrient Content of 4-year-old Fertilized and Unfertilized Northern Hardwood Stands , 1974 .
[71] A. McGuire,et al. Global climate change and terrestrial net primary production , 1993, Nature.
[72] Reinhart Ceulemans,et al. Tansley Review No. 71 Effects of elevated atmospheric CO2on woody plants , 1994 .
[73] W. Broecker,et al. A strategy for estimating the impact of CO2 fertilization on soil carbon storage , 1993 .
[74] A. McGuire,et al. Interactions between carbon and nitrogen dynamics in estimating net primary productivity for potential vegetation in North America , 1992 .
[75] Graham D. Farquhar,et al. Modelling of Photosynthetic Response to Environmental Conditions , 1982 .
[76] Christopher B. Field,et al. Predicting responses of photosynthesis and root fraction to elevated [CO2]a: interactions among carbon, nitrogen, and growth* , 1994 .