Suction Cup Samplers for Estimating Nitrate-Nitrogen in Soil Water in Irrigated Sugarbeet Production
- 1 USDA-ARSNorthern Plains Agricultural Research Laboratory, Sidney, MT, USA
- 2 USDA-ARSNorthern Plains Agricultural Research Laboratory, Sidney, MT, USA
- 3 USDA-ARSNorthern Plains Agricultural Research Laboratory, Sidney, MT, USA
- 4 USDA-ARSNorthern Plains Agricultural Research Laboratory, Sidney, MT, USA
- 5 USDA-ARSNorthern Plains Agricultural Research Laboratory, Sidney, MT, USA
Abstract
Efforts have increased to measure nitrate losses from farmland under different management practices due to environmental and public concerns over levels of nitrate-nitrogen (NO 3 -N) in surface and ground waters. This study evaluated the effect of conventional tillage (CT) and strip tillage (ST) practices and three N application rates on NO3-N concentrations in soil water at a 76 cm depth under irrigated sugarbeet ( Beta vulgaris L.) in a clay loam soil. Nitrogen rates were applied as dry urea at 120, 150, 180 kg N ha -1 in 2006; 130, 160, 190 kg N ha-1 in 2007; and 110, 140, 170 kg N ha -1 in 2008. Soil water volumes were measured weekly during each growing season using three ceramic suction cup samplers per plot placed at a 76 cm depth below the soil surface under each tillage. Results indicated that NO 3 -N concentrations at the 76 cm depth in the soil profile were not significantly affected by either tillage practice or by N application rate due to soil variability across the field and due to suction cup samplers’ biased estimate of soil water. The three N rates under CT and ST practices maintained NO 3 -N concentrations below the root zone to levels exceeding the 10 mg L -1 safe drinking water maximum level in all three years. There were large variations in NO 3 -N concentrations among replicates within each tillage and N rate that were likely caused by variability in soil physical, hydraulic and chemical properties that impacted water movement through the soil profile, N dynamics and leaching below the root zone of sugarbeet. In conclusion, suction cup samplers are point water measurement devices that reveal considerable variability among replicates within each treatment due to the heterogeneity of field soils. Further, these samplers are not recommended in heterogeneous soils with preferential flow characteristics.
- Greer, F.R. and Shannon, M. (2005) Infant Methemoglobinemia: The Role of Dietary Nitrate in Food and Water. Pediatrics, 116, 784-790. http://dx.doi.org/10.1542/peds.2005-1497
- US Environmental Protection Agency (1991) National Primary Drinking Water Regulations: Final Rule, 40. CFR Parts 141-143. Federal Register, 56, 3526-3597.
- Angle J.S., Gross, C.M., Hill, R.L. and Mcintosh, M.S. (1993) Soil Nitrate Concentrations Under Corn as Affected by Tillage, Manure and Fertilizer Application. Journal of Environmental Quality, 31, 141-147. http://dx.doi.org/10.2134/jeq1993.00472425002200010018x
- Randall, G.W. and Iragavarapu, T.K. (1995) Impact of Long-term Tillage Systems for Continuous Corn on Nitrate Leaching to Tile Drainage. Journal of Environmental Quality, 24, 360-366. http://dx.doi.org/10.2134/jeq1995.00472425002400020020x
- Shipitalo, J.J. and Edwards, W.M. (1993) Seasonal Patterns of Water and Chemical Movement in Tilled and No-till Column Lysimeters. Soil Science Society of America Journal, 57, 218-223. http://dx.doi.org/10.2136/sssaj1993.03615995005700010038x
- Singh, B. and Malhi, S.S. (2006) Response of Soil Physical Properties to Tillage and Residue Management on Two Soils in a Cool Temperate Environment. Soil and Tillage Research, 85, 143-153. http://dx.doi.org/10.1016/j.still.2004.12.005
- Meisinger, J.J., Palmer, R.E. and Timlin, D.J. (2015) Effects of Tillage Practices on Drainage and Nitrate Leaching from Winter Wheat in the Northern Atlantic Coastal-Plain USA. Soil Tillage and Tillage Research, 151, 18-27. http://dx.doi.org/10.1016/j.still.2015.02.007
- Randall, G.W. and Mulla, D.J. (2001) Nitrate Nitrogen in Surface Waters as Influenced by Climatic Conditions and Agricultural Practices. Journal of Environmental Quality, 30, 337-344. http://dx.doi.org/10.2134/jeq2001.302337x
- Al-Kaisi, M. and Licht, M.A. (2004) Effect of Strip Tillage on Corn and Corn Nitrogen Uptake and Residual Soil Nitrate Accumulation Compared with No-tillage and Chisel Plow. Agronomy Journal, 96, 1164-1171. http://dx.doi.org/10.2134/agronj2004.1164
- Zvomuya, F., Rosen, C.J., Russelle, M.P. and Gupta, S.C. (2003) Nitrate Leaching and Nitrogen Recovery Following Application of Polyolefin-Coated Urea to Potato. Journal of Environmental Quality, 32, 480-489. http://dx.doi.org/10.2134/jeq2003.4800
- Evans, R.G., Stevens, W.B. and Iversen, W.M. (2010a) Development of Strip Tillage on Sprinkler Irrigated Sugarbeet. Applied Engineering in Agriculture, 26, 59-69. http://dx.doi.org/10.13031/2013.29476