ASSESSING CLIMATE CHANGE IMPACTS ON WATER BALANCE, RUNOFF, AND WATER QUALITY AT THE FIELD SCALE FOR FOUR LOCATIONS IN THE HEARTLAND

被引:0
作者
Van Liew, M. W. [1 ]
Feng, S. [2 ,3 ]
Pathak, T. B. [3 ]
机构
[1] Univ Nebraska, Dept Biol Syst Engn, Lincoln, NE USA
[2] Univ Arkansas, Dept Geosci, Fayetteville, AR 72701 USA
[3] Univ Nebraska, Sch Nat Resources, Lincoln, NE USA
关键词
Model Calibration; Hydrology; Water Quality; Climate Change; SWAT; LAND-USE; RESPONSES; CO2; SIMULATION; STREAMFLOW; SEDIMENT; MODELS; BASIN; PLANT;
D O I
暂无
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
This study employed the Soil and Water Assessment Tool (SWAT) to evaluate the impacts of projected future climate change scenarios on water balance, runoff sediment, total nitrogen (N), and total phosphorus (P) at the field scale for four locations in the Heartland region: Sioux City (Iowa) and Columbus, Mullen, and Harrison (Nebraska). A conventional two-year corn-soybean rotation was assumed to be grown on each field All fields were simulated identically in terms of topographic and cover/land management conditions. Model inputs for the fields differed in only three ways: the forcing conditions for existing and future climatic scenarios (SRES A2, A1B, and B1), soil and aquifer properties, and calibrated parameters at each location. Model simulations indicate that for the Columbus and Sioux City sites, where current average annual precipitation is about 740 and 650 mm, respectively, substantial increases in runoff and pollutant loadings from a corn-soybean crop rotation are projected to occur during the spring under future climate scenarios in comparison to existing conditions. At the Sioux City site, for example, increases in runoff of 213%, 124%, and 128% during the month of May are projected for the A2, A1B, and B1 scenarios, respectively, in comparison to the baseline condition. Very large increases in attendant sediment and nutrient losses are also projected for that month at the Sioux City site. Considerably greater attention in coming years will therefore likely be necessary to devise best management practices and adaptation strategies that can be effectively employed to conserve soil and water resources and to protect streams and receiving waters from the harmful effects of higher pollutant loadings. At the Harrison site, where average annual precipitation is less than 450 mm, increases in average annual evapotranspiration of 29, 31, and 46 mm under the A2, A1B, and B1 future climate scenarios are projected to occur for a corn-soybean crop. Relative to the baseline at this site, water requirements are projected to be 37, 39, and 32 mm greater, respectively, for the peak irrigation month of July under the A2, A1B, and B1 scenarios. For regions in western Nebraska with similar or lesser precipitation levels, these anticipated changes could exacerbate already existing challenges for agricultural producers who primarily rely upon groundwater for irrigation. SWAT was employed to simulate the impact of four best management practices (BMPs) on changes in sediment, total N, and total P under the baseline and future climate change scenarios for each site. These four treatments included conversion of the corn-soybean rotation to pasture, switchgrass, and no-till, and implementation of a 10 m wide edge-of-field buffer strip. At all four sites, the pasture and switchgrass BMPs reduced sediment and total P yields by 97% to 99% in comparison to the corn-soybean cover crop. Each of the BMP treatments employed in this study appears to hold promise in providing potential reductions in sediment and nutrients for the two eastern field sites. However, further analyses are needed to not only assess the impact of other types of BMPs, but their cost effectiveness and sustainability as well. Model simulations suggest that, for the Harrison site, moderate decreases in sediment, total N, and total P are projected to occur for the no-till BMP and modest decreases for the 10 m buffer strip BMP Model simulations also suggest that, of the four BMP types, only the pasture and switchgrass treatments appear to provide appreciable reductions in sediment and nutrients at the Mullen site.
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页码:883 / 900
页数:18
相关论文
共 48 条
[1]  
[Anonymous], 0202 GSWRL TEX WAT R
[2]  
[Anonymous], 2009, Global climate change impacts in the Unites States
[3]   Large area hydrologic modeling and assessment - Part 1: Model development [J].
Arnold, JG ;
Srinivasan, R ;
Muttiah, RS ;
Williams, JR .
JOURNAL OF THE AMERICAN WATER RESOURCES ASSOCIATION, 1998, 34 (01) :73-89
[4]   Modeling the impact of hydrological changes on nitrate transport in the Mississippi River Basin from 1955 to 1994 [J].
Donner, SD ;
Coe, MT ;
Lenters, JD ;
Twine, TE ;
Foley, JA .
GLOBAL BIOGEOCHEMICAL CYCLES, 2002, 16 (03)
[5]   Potential impacts of climate change on groundwater recharge and streamflow in a central European low mountain range [J].
Eckhardt, K ;
Ulbrich, U .
JOURNAL OF HYDROLOGY, 2003, 284 (1-4) :244-252
[6]   Evaluating observed and projected future climate changes for the Arctic using the Koppen-Trewartha climate classification [J].
Feng, Song ;
Ho, Chang-Hoi ;
Hu, Qi ;
Oglesby, Robert J. ;
Jeong, Su-Jong ;
Kim, Baek-Min .
CLIMATE DYNAMICS, 2012, 38 (7-8) :1359-1373
[7]   Climate change sensitivity assessment of a highly agricultural watershed using SWAT [J].
Ficklin, Darren L. ;
Luo, Yuzhou ;
Luedeling, Eike ;
Zhang, Minghua .
JOURNAL OF HYDROLOGY, 2009, 374 (1-2) :16-29
[8]   STOMATAL RESPONSES TO INCREASED CO2 - IMPLICATIONS FROM THE PLANT TO THE GLOBAL-SCALE [J].
FIELD, CB ;
JACKSON, RB ;
MOONEY, HA .
PLANT CELL AND ENVIRONMENT, 1995, 18 (10) :1214-1225
[9]   Climate change impact on SWAT simulated streamflow in western Kenya [J].
Githui, Faith ;
Gitau, Wilson ;
Mutua, Francis ;
Bauwens, Willy .
INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2009, 29 (12) :1823-1834
[10]  
Goolsby D. A., 1999, DECISION ANAL SERIES, V17