Optimizing corn production and reducing nitrate losses with water table control subirrigation

被引:18
|
作者
Drury, CF
Tan, CS
Gaynor, JD
Oloya, TO
vanWesenbeeck, IJ
McKenney, DJ
机构
[1] DOWELANCO,ENVIRONM FATE,INDIANAPOLIS,IN 46268
[2] UNIV WINDSOR,DEPT CHEM & BIOCHEM,WINDSOR,ON N9B 3P4,CANADA
关键词
D O I
10.2136/sssaj1997.03615995006100030025x
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Water table control-subiriggation (WTC) systems have increased crop production and improved water quality; however, the relationship between N management, water table depths, and corn production has not been well defined. We hypothesized that optimizing water table depth would increase corn (Zea mays L.) growth, improve N fertilizer efficiency, and reduce N0(3)(-) losses. A greenhouse incubation study with three mater table depths (30, 60, and 80 cm) and four N rates (0, 0.7, 1.4, and 2.1 g N plant(-1)) was conducted using undisturbed soil columns (Fox sandy loam, Typic Hapludalf) planted to corn. The 30-cm WTC treatment had the greatest NO3- loss through tile drainage (715 mu g N column(-1)). The 60-cm WTC treatment reduced these losses by 54%, Nitrate losses through tile drainage were proportional to drainage volume, which followed the order 30 cm > 60 cm > 80 cm WTC. The 60-cm WTC treatment increased crop yields (95 g plant(-1)) compared with the 30-cm (68 g plant(-1)) and 80-cm WTC (18 g plant(-1)) treatments at the optimal N rate of 1.4 g N plant(-1). After the first simulated rainfall event, N2O production was increased by 12.7 times with the 30-cm WTC treatment (825 mu g N column(-1) d(-1)) compared with the 60- and 80-cm WTC treatments. Water stress imposed by the 80-cm WTC treatment limited crop growth, N uptake, leaching, and N2O emissions. However, up to 28% of added N (664 mg N column(-1)) remained in the soil after corn was harvested from the 80-cm WTC treatment, which would be susceptible to leaching between cropping seasons.
引用
收藏
页码:889 / 895
页数:7
相关论文
共 39 条
  • [1] Reducing nitrogen leaching losses from paddy field under water-saving irrigation by water table control
    He, Yupu
    Zhang, Zhanyu
    Xu, Junzeng
    Yang, Shihong
    Hong, Dalin
    Nongye Gongcheng Xuebao/Transactions of the Chinese Society of Agricultural Engineering, 2014, 30 (23): : 121 - 127
  • [2] Reducing nitrate leaching losses from vegetable production in Mediterranean greenhouses
    Thompson, R. B.
    Padilla, F. M.
    Pena-Fleitas, M. T.
    Gallardo, M.
    XI INTERNATIONAL SYMPOSIUM ON PROTECTED CULTIVATION IN MILD WINTER CLIMATES AND I INTERNATIONAL SYMPOSIUM ON NETTINGS AND SCREENS IN HORTICULTURE, 2020, 1268 : 105 - 117
  • [3] Reducing Nitrate-N losses to achieve water quality goals
    Helmers, Matt
    Christianson, Laura
    Christianson, Reid
    Resource: Engineering and Technology for Sustainable World, 2017, 24 (04): : 22 - 24
  • [4] Effectiveness of oat and rye cover crops in reducing nitrate losses in drainage water
    Kaspar, T. C.
    Jaynes, D. B.
    Parkin, T. B.
    Moorman, T. B.
    Singer, J. W.
    AGRICULTURAL WATER MANAGEMENT, 2012, 110 : 25 - 33
  • [5] EFFECT OF WATER-TABLE LEVELS ON SOYBEAN, CORN AND RICE PRODUCTION
    DEANDRADE, LM
    REIS, AEGD
    PESQUISA AGROPECUARIA BRASILEIRA, 1992, 27 (06) : 923 - 933
  • [6] Integrating constructed wetlands, water supply reservoirs, and subirrigation into a high yield potential corn and soybean production system
    Brown, LC
    Czartoski, BJ
    Fausey, NR
    Belcher, HW
    DRAINAGE IN THE 21ST CENTURY: FOOD PRODUCTION AND THE ENVIRONMENT: PROCEEDINGS OF THE 7TH INTERNATIONAL DRAINAGE SYMPOSIUM, 1998, : 523 - 529
  • [7] PATTERNS OF SOIL NITRATE AVAILABILITY IN CORN PRODUCTION SYSTEMS - IMPLICATIONS FOR REDUCING GROUNDWATER CONTAMINATION
    STAVER, KW
    BRINSFIELD, RB
    JOURNAL OF SOIL AND WATER CONSERVATION, 1990, 45 (02) : 318 - 323
  • [8] Nitrate losses in runoff and subsurface drain effluent from controlled water-table plots
    Willis, GH
    Southwick, LM
    Fouss, JL
    Carter, CE
    Rogers, JS
    BULLETIN OF ENVIRONMENTAL CONTAMINATION AND TOXICOLOGY, 1997, 58 (04) : 566 - 573
  • [9] Nitrate Losses in Runoff and Subsurface Drain Effluent from Controlled–Water-Table Plots
    G. H. Willis
    L. M. Southwick
    J. L. Fouss
    C. E. Carter
    J. S. Rogers
    Bulletin of Environmental Contamination and Toxicology , 1997, 58 : 566 - 573
  • [10] Reducing Nitrate Loss in Tile Drainage Water with Cover Crops and Water-Table Management Systems
    Drury, C. F.
    Tan, C. S.
    Welacky, T. W.
    Reynolds, W. D.
    Zhang, T. Q.
    Oloya, T. O.
    McLaughlin, N. B.
    Gaynor, J. D.
    JOURNAL OF ENVIRONMENTAL QUALITY, 2014, 43 (02) : 587 - 598