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Contribution of environmental forcings to US runoff changes for the period 1950–2010

Bibliographic Data

ID15549034
AuthorsWhitney L Forbes (Oak Ridge National Laboratory), Jiafu Mao (0000-0002-2050-7373, Oak Ridge National Laboratory, corresponding author), Mingzhou Jin (0000-0002-2387-8129, University of Tennessee at Knoxville, corresponding author), Shih‐Chieh Kao (0000-0002-3207-5328, Oak Ridge National Laboratory), Wenting Fu (The University of Texas at Austin), Xiaoying Shi (0000-0003-0452-2503, Oak Ridge National Laboratory), Daniel Ricciuto (0000-0002-3668-3021), Daniel M Riccuito (Oak Ridge National Laboratory), Peter Thornton (0000-0002-4759-5158, Oak Ridge National Laboratory), Aurélien Ribes (0000-0001-5102-7885, Centre National de Recherches Météorologiques), Yutao Wang (0000-0002-7343-5369, Fudan University), Shilong Piao (0000-0001-8057-2292, Peking University), Tianbao Zhao (0000-0002-8295-6537, Institute of Atmospheric Physics), Christopher R Schwalm (0000-0002-5035-5681, Northern Arizona University), Forrest M Hoffman (0000-0001-5802-4134, Oak Ridge National Laboratory), Joshua B Fisher (0000-0002-5954-7989, Jet Propulsion Laboratory), Akihiko Ito (0000-0001-5265-0791, National Institute for Environmental Studies), Benjamin Poulter (0000-0002-9493-8600, Goddard Space Flight Center), Ben Poulter, Yuanyuan Fang (0000-0001-7067-7103, Carnegie Institution for Science), Hanqin Tian (0000-0002-1806-4091, Auburn University), Atul K Jain (0000-0002-4051-3228, University of Illinois Urbana-Champaign), Daniel J Hayes (0000-0002-3011-7934, University of Maine)
Year2018
Volume13
Issue5
Pages054023-054023
Publication date2018-04-03
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/aabb41
OpenAlexW2795520714
LanguageEN
References cited56

Runoff in the United States is changing, and this study finds that the measured change is dependent on the geographic region and varies seasonally. Specifically, observed annual total runoff had an insignificant increasing trend in the US between 1950 and 2010, but this insignificance was due to regional heterogeneity with both significant and insignificant increases in the eastern, northern, and southern US, and a greater significant decrease in the western US. Trends for seasonal mean runoff also differed across regions. By region, the season with the largest observed trend was autumn for the east (positive), spring for the north (positive), winter for the south (positive), winter for the west (negative), and autumn for the US as a whole (positive). Based on the detection and attribution analysis using gridded WaterWatch runoff observations along with semi-factorial land surface model simulations from the Multi-scale Synthesis and Terrestrial Model Intercomparison Project (MsTMIP), we found that while the roles of CO 2 concentration, nitrogen deposition, and land use and land cover were inconsistent regionally and seasonally, the effect of climatic variations was detected for all regions and seasons, and the change in runoff could be attributed to climate change in summer and autumn in the south and in autumn in the west. We also found that the climate-only and historical transient simulations consistently underestimated the runoff trends, possibly due to precipitation bias in the MsTMIP driver or within the models themselves

Climate change · Climatology · Geography · Meteorology · Period (music · Physical geography · Precipitation · Surface runoff · Cryospheric studies and observations · Environmental Science · Hydrology and Watershed Management Studies · Soil and Water Nutrient Dynamics · Ecology · Geology

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