Hydrological variability and agricultural drainage ditch inorganic nitrogen reduction capacity

被引:90
作者
Kroeger, R. [1 ]
Holland, M. M.
Moore, M. T.
Cooper, C. M.
机构
[1] Univ Mississippi, Dept Biol, University, MS 38677 USA
[2] USDA ARS, Natl Sedimentat Lab, Oxford, MS 38655 USA
关键词
D O I
10.2134/jeq2006.0506
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The application of inorganic nitrogen fertilizers on agricultural landscapes has the potential to generate concerns of environmental degradation at fine to coarse scales across the catchment and landscape. Inorganic nitrogen species (No-3(-), NO2 and NH3) are typically associated with subsurface flow processes; however, surface runoff from rainfall events in no-till agriculture with inorganic surface fertilizers might contribute to downstream eutrophication. Inorganic nitrogen reduction capacity of agricultural drainage ditches under no-till cotton was determined under natural, variable rainfall conditions in northern Mississippi. Monthly grab base flow samples and storm-generated flow samples were variably sampled temporally within two experimental farm ditches over 2 yr. Inorganic nitrogen concentrations, in conjunction with Manning's equation and Natural Resources Conservation Service dimensionless hydrographs, provided individual water volumes per storm event and thus maximum effluent and outflow nitrogen loads. Base and stormflow regression results indicate drainage ditches reducing NO3- and NH3 over the length of the ditch for growing and dormant seasons. Overall, maximum storm loads of dissolved inorganic nitrogen (DIN) from the farm over the 2-yr sampling period accounted for 2.2% of the initial fertilizer application, of which 1.1% left the ditch (0.84 kg ha(-1) yr(-1)) (a 57% ditch reduction of DIN load over 2 yr). Long-term sampling incorporating data on application and loss of fertilizers and farm management will provide critical information for farmers and scientists on the potential of economic gains and downstream ecosystem eutrophication, respectively.
引用
收藏
页码:1646 / 1652
页数:7
相关论文
共 34 条
[21]  
Morris Jr. W. M., 1981, SOIL SURVEY LAFAYETT
[22]  
Pritzlaff D., 2003, 10107041C LACH INSTR
[23]   Nutrient changes in the Mississippi River and system responses on the adjacent continental shelf [J].
Rabalais, NN ;
Turner, RE ;
Justic, D ;
Dortch, Q ;
Wiseman, WJ ;
SenGupta, BK .
ESTUARIES, 1996, 19 (2B) :386-407
[24]   NEW MEMBRANE-BASED ELECTROLYTIC SUPPRESSOR DEVICE FOR SUPPRESSED CONDUCTIVITY DETECTION IN ION CHROMATOGRAPHY [J].
RABIN, S ;
STILLIAN, J ;
BARRETO, V ;
FRIEDMAN, K ;
TOOFAN, M .
JOURNAL OF CHROMATOGRAPHY, 1993, 640 (1-2) :97-109
[25]  
Rao EVSP, 2000, CURR SCI INDIA, V79, P1163
[26]   NITRATE LEACHING FROM GRASSLAND [J].
RYDEN, JC ;
BALL, PR ;
GARWOOD, EA .
NATURE, 1984, 311 (5981) :50-53
[27]  
Salama M. M., 1992, Water Resources Management, V6, P149, DOI 10.1007/BF00872209
[28]   An improved method for roughening floodplains on physical river models [J].
Sellin, RHJ ;
Bryant, TB ;
Loveless, JH .
JOURNAL OF HYDRAULIC RESEARCH, 2003, 41 (01) :3-14
[29]   TRANSPORT OF AMMONIUM-NITROGEN AND NITRATE-NITROGEN IN SURFACE RUNOFF FROM PASTURE AS INFLUENCED BY UREA APPLICATION [J].
SHARPLEY, AN ;
SYERS, JK ;
TILLMAN, RW .
WATER AIR AND SOIL POLLUTION, 1983, 20 (04) :425-430
[30]   NOVEL ION-EXCHANGE CHROMATOGRAPHIC METHOD USING CONDUCTIMETRIC DETECTION [J].
SMALL, H ;
STEVENS, TS ;
BAUMAN, WC .
ANALYTICAL CHEMISTRY, 1975, 47 (11) :1801-1809