Exploring global changes in nitrogen and phosphorus cycles in agriculture induced by livestock production over the 1900–2050 period
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Elke Stehfest | Kees Klein Goldewijk | Mariana C Rufino | E. Stehfest | K. K. Goldewijk | M. Rufino | A. Beusen | D. V. van Vuuren | J. Willems | L. Bouwman | K. W. Van der Hoek | Lex Bouwman | Klaas W Van Der Hoek | Arthur H W Beusen | Detlef P Van Vuuren | Jaap Willems
[1] Richard A. Vollenweider,et al. Coastal marine eutrophication: principles and control , 1992 .
[2] B. K. Greenfield,et al. Mercury in San Francisco Bay forage fish. , 2010, Environmental pollution.
[3] J. Domagalski. Mercury and methylmercury in water and sediment of the Sacramento River Basin, California , 2001 .
[4] Kees Klein Goldewijk,et al. Long-term dynamic modeling of global population and built-up area in a spatially explicit way: HYDE 3.1 , 2010 .
[5] Michael Obersteiner,et al. A high-resolution assessment on global nitrogen flows in cropland , 2010, Proceedings of the National Academy of Sciences.
[6] H. H. Van Horn,et al. Ruminant nutrition from an environmental perspective: factors affecting whole-farm nutrient balance. , 1996, Journal of animal science.
[7] A. Dobermann,et al. Cereal area and nitrogen use efficiency are drivers of future nitrogen fertilizer consumption , 2005, Science in China Series C: Life Sciences.
[8] P. Heuberger,et al. Bottom-up uncertainty estimates of global ammonia emissions from global agricultural production systems , 2008 .
[9] D. F. Grigal,et al. Regional trends in mercury distribution across the Great Lakes states, north central USA , 1992, Nature.
[10] N. Batjes. Revised soil parameter estimates for the soil types of the world , 2002 .
[11] John A. Harrison,et al. Global nitrogen and phosphate in urban wastewater for the period 1970 to 2050 , 2009 .
[12] H. Steinfeld,et al. Livestock's long shadow: environmental issues and options. , 2006 .
[13] R. Aalto,et al. Floodplain development in an engineered setting , 2009 .
[14] H. Steinfeld,et al. World livestock production systems , 1996 .
[15] R. Rabbinge,et al. Agriculture and its environment: are there other ways? , 1986 .
[16] S. Luoma,et al. Mercury-Contaminated Hydraulic Mining Debris in San Francisco Bay , 2010 .
[17] N. Hofstra,et al. Denitrification in Agricultural Soils: Summarizing Published Data and Estimating Global Annual Rates , 2005, Nutrient Cycling in Agroecosystems.
[18] R. Aalto,et al. 210Pb geochronology of flood events in large tropical river systems , 2012, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[19] K. V. D. Hoek,et al. Nitrogen efficiency in global animal production , 1998 .
[20] S. Frolking,et al. Harmonisation of global land-use scenarios for the period 1500–2100 for IPCC-AR5 , 2009 .
[21] R. Bartha,et al. Sulfate-Reducing Bacteria: Principal Methylators of Mercury in Anoxic Estuarine Sediment , 1985, Applied and environmental microbiology.
[22] A. Bouwman,et al. A global high‐resolution emission inventory for ammonia , 1997 .
[23] A. Bouwman,et al. Human alteration of the global nitrogen and phosphorus soil balances for the period 1970–2050 , 2009 .
[24] T. Quine,et al. Modeling alluvial landform change in the absence of external environmental forcing , 2007 .
[25] John A. Harrison,et al. Dissolved inorganic phosphorus export to the coastal zone: Results from a spatially explicit, global model , 2005 .
[26] R. Pavlowsky,et al. Mercury contamination of active channel sediment and floodplain deposits from historic gold mining at Gold Hill, North Carolina, USA , 2008 .
[27] J. Specht,et al. Nitrogen uptake, fixation and response to fertilizer N in soybeans: A review , 2008 .
[28] A. White,et al. The Movement of Aquatic Mercury Through Terrestrial Food Webs , 2008, Science.
[29] L. Slater,et al. Imprint of climate and climate change in alluvial riverbeds: Continental United States, 1950-2011 , 2013 .
[30] L. James. Sustained Storage and Transport of Hydraulic Gold Mining Sediment in the Bear River, California , 1989 .
[31] V The Use of Fertilizers and . Soil Amendments , 2006 .
[32] Carolien Kroeze,et al. Global river nutrient export: A scenario analysis of past and future trends , 2010 .
[33] J. Lingard,et al. Contribution of livestock excreta to nutrient balances , 2003, Nutrient Cycling in Agroecosystems.
[34] N. Batjes. A world dataset of derived soil properties by FAO–UNESCO soil unit for global modelling , 1997 .
[35] Mark G. Macklin,et al. Channel and floodplain response to recent abrupt climate change: The tyne basin, Northern England , 1994 .
[36] W. Dietrich,et al. Sediment load and floodplain deposition rates: Comparison of the Fly and Strickland rivers, Papua New Guinea , 2008 .
[37] Dennis P. Swaney,et al. Regional nitrogen budgets and riverine N & P fluxes for the drainages to the North Atlantic Ocean: Natural and human influences , 1996 .
[38] N. Snyder,et al. Estimating accumulation rates and physical properties of sediment behind a dam: Englebright Lake, Yuba River, northern California , 2004 .
[39] N. H. Ravindranath,et al. 2006 IPCC Guidelines for National Greenhouse Gas Inventories , 2006 .
[40] C. Sere,et al. World livestock production systems. Current status, issues and trends , 1995 .
[42] Rolf Aalto,et al. Channel and Floodplain Change Analysis over a 100-Year Period: Lower Yuba River, California , 2010, Remote. Sens..
[43] M. Dettinger. Climate Change, Atmospheric Rivers, and Floods in California – A Multimodel Analysis of Storm Frequency and Magnitude Changes 1 , 2011 .
[44] Niels H. Batjes,et al. Estimation of global NH3 volatilization loss from synthetic fertilizers and animal manure applied to arable lands and grasslands , 2002 .
[45] L. James,et al. Status of the Lower Sacramento Valley Flood-Control System within the Context of Its Natural Geomorphic Setting , 2008 .
[46] Jerry R. Miller,et al. Effects of the 1997 Flood on the Transport and Storage of Sediment and Mercury within the Carson River Valley, West‐Central Nevada , 1999, The Journal of Geology.
[47] C. Nevison,et al. Closing the global N2O budget: nitrous oxide emissions through the agricultural nitrogen cycle , 1998, Nutrient Cycling in Agroecosystems.
[48] BANK STABILITY ANALYSIS FOR PREDICTING REACH SCALE LAND LOSS AND SEDIMENT YIELD 1 , 2003 .
[49] E. Cowling,et al. The Nitrogen Cascade , 2003 .
[50] Jerry R. Miller. The role of fluvial geomorphic processes in the dispersal of heavy metals from mine sites , 1997 .
[51] D. Yee,et al. An isotopic record of mercury in San Francisco Bay sediment , 2013 .
[52] D. Roberts,et al. Remote sensing of suspended sediment concentration during turbid flood conditions on the Feather River, California—A modeling approach , 2012 .
[53] S. Luoma,et al. Historical trends of metals in the sediments of San Francisco Bay, California , 1999 .
[54] D. Walling,et al. The role of channel and floodplain storage in the suspended sediment budget of the River Ouse, Yorkshire, UK , 1998 .
[55] M. Springborn,et al. Sediment-adsorbed total mercury flux through Yolo Bypass, the primary floodway and wetland in the Sacramento Valley, California. , 2011, The Science of the total environment.
[56] A. Cressy. Morrison,et al. Man in a chemical world : the service of chemical industry , 1937 .
[57] R. E. Turner,et al. Global patterns of dissolved N, P and Si in large rivers , 2003 .
[58] Carolien Kroeze,et al. Closing the global atmospheric N2O budget: nitrous oxide emissions through the agricultural nitrogen cycle. (OECD/IPCC/IEA Phase II Development of IPCC Guidelines for National Greenhouse Gas Inventories). , 1997 .
[59] Ralph Mitchell,et al. Sulfate stimulation of mercury methylation in freshwater sediments , 1992 .
[60] N. Batjes,et al. Modeling global annual N2O and NO emissions from fertilized fields , 2002 .
[61] J. Six,et al. Efficiency of Fertilizer Nitrogen in Cereal Production: Retrospects and Prospects , 2005 .
[62] A. Knighton. River adjustment to changes in sediment load: The effects of tin mining on the Ringarooma River , 1989 .
[63] D. Mertens,et al. Prediction of excretion of manure and nitrogen by Holstein dairy cattle. , 1997, Journal of dairy science.
[64] M. Dettinger,et al. Potential increase in floods in California’s Sierra Nevada under future climate projections , 2011 .
[65] Broadus Mitchell,et al. International historical statistics: Africa, Asia & Oceania, 1750-1993 , 1995 .
[66] W. Wiseman,et al. Hypoxia in the Gulf of Mexico. , 2001, Journal of environmental quality.
[67] A. Bouwman,et al. Upscaling of nutrient budgets from agroecological niche to global scale. , 1999 .
[68] V. Smil. Nitrogen in crop production: An account of global flows , 1999 .
[69] A. Dobermann,et al. Environmental dimensions of fertilizer nitrogen: what can be done to increase nitrogen use efficiency and ensure global food security? , 2004 .
[70] R. Gibbs. Transport phases of transition metals in the Amazon and Yukon Rivers , 1977 .
[71] L. James. Decreasing sediment yields in northern California: vestiges of hydraulic gold-mining and reservoir trapping , 2004 .
[72] J. Blum,et al. Sources of mercury to San Francisco Bay surface sediment as revealed by mercury stable isotopes , 2011 .
[73] H. Steinfeld,et al. Livestock's Long Shadow , 2006 .
[74] R. Rosenberg,et al. Spreading Dead Zones and Consequences for Marine Ecosystems , 2008, Science.
[75] Ximing Cai,et al. World Water And Food To 2025: Dealing With Scarcity , 2002 .
[76] Donna Mergler,et al. Methylmercury Exposure and Health Effects in Humans: A Worldwide Concern , 2007, Ambio.
[77] T. Dunne,et al. Modeling the influence of river rehabilitation scenarios on bed material sediment flux in a large river over decadal timescales , 2006 .
[78] Carolien Kroeze,et al. The impact of animal production systems on the nitrogen cycle , 2010 .
[79] P H Abelson,et al. A Potential Phosphate Crisis , 1999, Science.
[80] D Hauglustaine,et al. The global atmospheric environment for the next generation. , 2006, Environmental science & technology.
[81] J. Syers,et al. Efficiency of soil and fertilizer phosphorus use. Reconciling changing concepts of soil phosphorus behaviour with agronomic information , 2008 .
[82] Claude B. Courbois,et al. Livestock to 2020: The Next Food Revolution , 2001 .
[83] J. Ackerman,et al. Mercury bioaccumulation and risk to three waterbird foraging guilds is influenced by foraging ecology and breeding stage. , 2009, Environmental pollution.
[84] Arthur H. W. Beusen,et al. Global modeling of the fate of nitrogen from point and nonpoint sources in soils, groundwater, and surface water , 2003 .
[85] Bas Eickhout,et al. Climate benefits of changing diet , 2009 .
[86] J. Galloway,et al. Transformation of the Nitrogen Cycle: Recent Trends, Questions, and Potential Solutions , 2008, Science.
[87] D. Herridge,et al. Global inputs of biological nitrogen fixation in agricultural systems , 2008, Plant and Soil.
[88] M. Hodgson,et al. Geomorphic change detection using historic maps and DEM differencing: The temporal dimension of geospatial analysis , 2012 .
[89] Kees Klein Goldewijk,et al. The HYDE 3.1 spatially explicit database of human‐induced global land‐use change over the past 12,000 years , 2011 .
[90] S. Darby,et al. Bank and near-bank processes in an incised channel , 2000 .
[91] E. Cowling,et al. Reactive Nitrogen and The World: 200 Years of Change , 2002, Ambio.
[92] A. Dobermann,et al. Emerging Technologies to Increase the Efficiency of Use of Fertilzer Nitrogen , 2004 .
[93] Global Economics of Nutrient Cycling , 2008 .
[94] P. Burrough,et al. In situ measurements of sediment settling characteristics in floodplains using a LISST‐ST , 2005 .
[95] Bas Eickhout,et al. Exploring changes in world ruminant production systems , 2005 .
[96] Robert H. Woods,et al. International Historical Statistics: The Americas 1750-1988 , 1994 .