玉米-大豆轮作排水管理对土壤N2O和CH4通量的影响

Nitrogen Pub Date : 2022-03-17 DOI:10.3390/nitrogen3010010
J. Hagedorn, E. Davidson, T. Fisher, R. Fox, Qiurui Zhu, A. Gustafson, E. Koontz, M. Castro, James W. Lewis
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引用次数: 3

摘要

排水管理(DWM),也称为控制排水,是一种应用于排水沟的最佳管理实践(BMP),在减少农田溶解氮出口方面取得了成功。通过减缓农业沟渠的排放,随后的厌氧土壤条件为硝酸盐通过反硝化作用减少提供了一个环境。尽管取得了这一成功,但不完全反硝化可能会增加一氧化二氮(N2O)的排放,而更多的还原条件可能会增加甲烷生成,从而导致甲烷(CH4)排放增加。N2O和CH4这两种气体是强效温室气体(GHG), N2O也会消耗平流层臭氧。这种潜在的硝酸盐减排与温室气体生产的污染交换可能会对BMP的理想性产生负面影响。我们在Delmarva半岛的玉米-大豆轮作中,对有和没有DWM的农田地块进行了为期三年的土壤表面温室气体排放静态室测量。我们发现,DWM提高了排水沟边缘的地下水位,但对田间土壤表面的充水孔隙空间没有统计学意义上的影响。我们也没有发现DWM对温室气体排放的显著影响。这些发现令人鼓舞,并表明,至少对这个农场来说,DWM可以用来去除硝酸盐,而不会增加温室气体排放。
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Effects of Drainage Water Management in a Corn–Soy Rotation on Soil N2O and CH4 Fluxes
Drainage water management (DWM), also known as controlled drainage, is a best management practice (BMP) deployed on drainage ditches with demonstrated success at reducing dissolved nitrogen export from agricultural fields. By slowing discharge from agricultural ditches, subsequent anaerobic soil conditions provide an environment for nitrate to be reduced via denitrification. Despite this success, incomplete denitrification might increase nitrous oxide (N2O) emissions and more reducing conditions might increase methanogenesis, resulting in increased methane (CH4) emissions. These two gases, N2O and CH4, are potent greenhouse gases (GHG) and N2O also depletes stratospheric ozone. This potential pollution swapping of nitrate reduction for GHG production could negatively impact the desirability of this BMP. We conducted three years of static chamber measurements of GHG emissions from the soil surface in farm plots with and without DWM in a corn–soybean rotation on the Delmarva Peninsula. We found that DWM raised the water table at the drainage ditch edge, but had no statistically significant effect on water-filled pore space in the field soil surface. Nor did we find a significant effect of DWM on GHG emissions. These findings are encouraging and suggest that, at least for this farm site, DWM can be used to remove nitrate without a significant tradeoff of increased GHG emissions.
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