The Regional Impacts of Climate Change

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The interaction of rising CO2 and temperatures with water use efficiency. Plant, Cell and Environment, 14, 843-852.

Eamus, D., 1996a:

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Eamus, D. 1996b:

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Physiological adjustment of two full-sib families of ponderosa pine to elevated CO2. Tree Physiology, 12, 391-401.

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An equilibrium terrestrial biosphere model based on ecophysiological constraints, resource availability and competition among plant functional types. Global Biogeochemical Cycles, 10(4), 693-710.

Haxeltine, A., I.C. Prentice, and I.D. Creswell, 1996:

A coupled carbon and water flux model to predict vegetation structure. Journal of Vegetation Science, 7(5), 651-666.

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Simulated dry matter yields for aspen and spruce stands in the North American boreal forest. Canadian Journal of Remote Sensing, 18, 126-133.

IPCC, 1990:

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IPCC, 1996:

Climate Change 1995: The Science of Climate Change. Contribution of Working Group I to the Second Assessment Report of the Intergovernmental Panel on Climate Change [Houghton, J.T., L.G. Meira Filho, B.A. Callander, N. Harris, A. Kattenberg, and K. Maskell (eds.)]. Cambridge University Press, Cambridge and New York, 572 pp.

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IPCC, 1996. Climate Change 1995:

Impacts, Adaptations and Mitigation of Climate Change: Scientific-Technical Analyses. Contribution of Working Group II of the Second Assessment Report of the Intergovernmental Panel on Climate Change [Watson, R.T., M.C. Zinyowera, and R.H. Moss (eds.)]. Cambridge University Press, Cambridge and New York, 880 pp.

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Modelling forest response to increasing CO2 concentration under nutrient-limited conditions. Plant, Cell and Environment, 17, 1081-1099.

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The IIASA database for mean monthly values of temperature, precipitation, and cloudiness on the global terrestrial grid. International Institute for Applied Systems Analysis RR-91-18, pp. 1-62.

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The role of nitrogen in the response of forest net primary production to elevated atmospheric carbon dioxide. Annual Review of Ecology and Systematics, 26, 473-503.

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Interactions between carbon and nitrogen dynamics in estimating net primary productivity for potential vegetation in North America. Global Biogeochemical Cycles, 6, 101-124.

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Global climate change and terrestrial net primary production. Nature, 363, 234-240.

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A review of forest patch models and their application to global change research. Climatic Change, 34(2), 131-153.

Smith, T.M. and H.H. Shugart, 1993:

The transient response of terrestrial carbon storage to a perturbed climate. Nature, 361, 523-526.

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Combined effects of elevated CO2 and air temperature on carbon assimilation of Pinus taeda trees. Plant, Cell and Environment, 20, 373-380.

VEMAP Members, 1995:

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. Global Biogeochemical Cycles, 9, 407-437.

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A global land primary productivity and phytogeography model. Global Biogeochemical Cycles, 9, 471-490.

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On the Potential for a CO2 Fertilization Effect in Forest Trees: An Assessment of 58 Controlled-Exposure Studies and Estimates of the Biotic Growth Factor. In: Biotic Feedbacks in the Global Climate System [Woodwell, G.M. and F.T. Mackenzie (eds.)]. Oxford University Press, New York, pp. 85-107.

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