Changes in climate and land use have a larger direct impact than rising CO2 on global river runoff trends
暂无分享,去创建一个
P. Ciais | S. Zaehle | P. Friedlingstein | D. Labat | S. Piao | N. de Noblet‐Ducoudré | Nathalie de Noblet‐Ducoudré
[1] S. Kanae,et al. Global Hydrological Cycles and World Water Resources , 2006, Science.
[2] Jacek Stankiewicz,et al. Changes in Surface Water Supply Across Africa with Predicted Climate Change , 2006, Science.
[3] R. Betts,et al. Detection of a direct carbon dioxide effect in continental river runoff records , 2006, Nature.
[4] 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.
[5] 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.
[6] Bruce A. McCarl,et al. Trading Water for Carbon with Biological Carbon Sequestration , 2005, Science.
[7] A. V. Vecchia,et al. Global pattern of trends in streamflow and water availability in a changing climate , 2005, Nature.
[8] P. Ciais,et al. Europe-wide reduction in primary productivity caused by the heat and drought in 2003 , 2005, Nature.
[9] S. Carpenter,et al. Global Consequences of Land Use , 2005, Science.
[10] W. Steffen,et al. Human modification of global water vapor flows from the land surface. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[11] T. D. Mitchell,et al. An improved method of constructing a database of monthly climate observations and associated high‐resolution grids , 2005 .
[12] Jean-Luc Probst,et al. Evidence for global runoff increase related to climate warming , 2004 .
[13] M. Castro,et al. Sensitivity of the Continental Hydrological Cycle to the Spatial Resolution over the Iberian Peninsula , 2004 .
[14] M. H. Costa,et al. Effects of large-scale changes in land cover on the discharge of the Tocantins River, Southeastern Amazonia , 2003 .
[15] R. B. Jackson,et al. Nonlinear grassland responses to past and future atmospheric CO2 , 2002, Nature.
[16] K. K. Goldewijk. Estimating global land use change over the past 300 years: The HYDE Database , 2001 .
[17] D. Pollard,et al. Large-Scale Vegetation Feedbacks on a Doubled CO2 Climate , 2000 .
[18] Limin Yang,et al. Development of a global land cover characteristics database and IGBP DISCover from 1 km AVHRR data , 2000 .
[19] N. Ramankutty,et al. Estimating historical changes in global land cover: Croplands from 1700 to 1992 , 1999 .
[20] Peter S. Curtis,et al. A meta-analysis of elevated CO2 effects on woody plant mass, form, and physiology , 1998, Oecologia.
[21] Marcos Heil Costa,et al. Water balance of the Amazon Basin: Dependence on vegetation cover and canopy conductance , 1997 .
[22] Susan E. Lee,et al. Contrasting physiological and structural vegetation feedbacks in climate change simulations , 1997, Nature.
[23] M. J. Hall,et al. The effects of afforestation and deforestation on water yields , 1996 .
[24] Christopher B. Field,et al. Stomatal responses to increased CO2: implications from the plant to the global scale , 1995 .
[25] J. Nagy,et al. Effects of free-air carbon dioxide enrichment on PAR absorption and conversion efficiency by cotton , 1994 .
[26] P. Milly,et al. Sensitivity of the Global Water Cycle to the Water-Holding Capacity of Land , 1994 .
[27] A. Perrier,et al. SECHIBA : a new set of parameterizations of the hydrologic exchanges at the land-atmosphere interface within the LMD atmospheric general circulation model , 1993 .
[28] M. B. Kirkham,et al. Canopy photosynthesis and evapotranspiration of rangeland plants under doubled carbon dioxide in closed-top chambers☆ , 1992 .
[29] Moustafa T. Chahine,et al. The hydrological cycle and its influence on climate , 1992, Nature.