Agricultural conservation practices can help mitigate the impact of climate change

被引:74
作者
Wagena, Moges B. [1 ]
Easton, Zachary M. [1 ]
机构
[1] Virginia Tech, Dept Biol Syst Engn, Blacksburg, VA 24061 USA
基金
美国国家科学基金会;
关键词
SWAT-VSA; Climate change; Agricultural conservation practices; Nutrient cycling; Critical sources areas; SUSQUEHANNA RIVER-BASIN; NORTH-AMERICAN CLIMATE; ASSESSMENT-TOOL SWAT; WATER-QUALITY; PHOSPHORUS; SOIL; MANAGEMENT; MODEL; PRECIPITATION; SEDIMENT;
D O I
10.1016/j.scitotenv.2018.04.110
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Agricultural conservation practices (CPs) are commonly implemented to reduce diffuse nutrient pollution. Climate change can complicate the development, implementation, and efficiency of agricultural CPs by altering hydrology, nutrient cycling, and erosion. This research quantifies the impact of climate change on hydrology, nutrient cycling, erosion, and the effectiveness of agricultural CP in the Susquehanna River Basin in the Chesapeake Bay Watershed, USA. We develop, calibrate, and test the Soil and Water Assessment Tool-Variable Source Area (SWAT-VSA) model and select four CPs; buffer strips, strip-cropping, no-till, and tile drainage, to test their effectiveness in reducing climate change impacts on water quality. We force the model with six downscaled global climate models (GCMs) for a historic period (1990-2014) and two future scenario periods (2041-2065 and 2075-2099) and quantify the impact of climate change on hydrology, nitrate-N (NO3-N), total N (TN), dissolved phosphorus (DP), total phosphorus (TP), and sediment export with and without CPs. We also test prioritizing CP installation on the 30% of agricultural lands that generate the most runoff (e.g., critical source areas-CSAs). Compared against the historical baseline and with no CPs, the ensemble model predictions indicate that climate change results in annual increases in flow (4.5 +/- 7.3%), surface runoff (3.5 +/- 6.1%), sediment export (28.5 +/- 18.2%) and TN export (9.5 +/- 5.1%), but decreases in NO3-N (12 +/- 12.8%), DP (14 +/- 11.5), and TP (2.5 +/- 7.4%) export. When agricultural CPs are simulated most do not appreciably change the water balance, however, tile drainage and strip-cropping decrease surface runoff, sediment export, and DP/TP, while buffer strips reduce N export. Installing CPs on CSAs results in nearly the same level of performance for most practices and most pollutants. These results suggest that climate change will influence the performance of agricultural CPs and that targeting agricultural CPs to CSAs can provide nearly the same level of water quality effects as more widespread adoption. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:132 / 143
页数:12
相关论文
共 65 条
[1]   Impact of climate change on diffuse pollutant fluxes at the watershed scale [J].
Ahmadi, Mehdi ;
Records, Rosemary ;
Arabi, Mazdak .
HYDROLOGICAL PROCESSES, 2014, 28 (04) :1962-1972
[2]  
[Anonymous], 2007, STATE WORLDS FORESTS
[3]   Representation of agricultural conservation practices with SWAT [J].
Arabi, Mazdak ;
Frankenberger, Jane R. ;
Enge, Bernie A. ;
Arnold, Jeff G. .
HYDROLOGICAL PROCESSES, 2008, 22 (16) :3042-3055
[4]  
Arnold JG, 2012, T ASABE, V55, P1491
[5]   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
[6]   Grass barrier and vegetative filter strip effectiveness in reducing runoff, sediment, nitrogen, and phosphorus loss [J].
Blanco-Canqui, H ;
Gantzer, CJ ;
Anderson, SH ;
Alberts, EE ;
Thompson, AL .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2004, 68 (05) :1670-1678
[7]   Chesapeake Bay eutrophication: Scientific understanding, ecosystem restoration, and challenges for agriculture [J].
Boesch, DF ;
Brinsfield, RB ;
Magnien, RE .
JOURNAL OF ENVIRONMENTAL QUALITY, 2001, 30 (02) :303-320
[8]   Interacting effects of climate change and agricultural BMPs on nutrient runoff entering Lake Erie [J].
Bosch, Nathan S. ;
Evans, Mary Anne ;
Scavia, Donald ;
Allan, J. David .
JOURNAL OF GREAT LAKES RESEARCH, 2014, 40 (03) :581-589
[9]  
Bracmort KS, 2006, T ASABE, V49, P367, DOI 10.13031/2013.20411
[10]  
Burgin AJ, 2007, FRONT ECOL ENVIRON, V5, P89, DOI 10.1890/1540-9295(2007)5[89:HWOTRO]2.0.CO