Browse > Article
http://dx.doi.org/10.7745/KJSSF.2017.50.5.345

Evaluation for Impacts of Nitrogen Source to Groundwater Quality in Livestock Farming Area  

Lee, Gyeong-Mi (National Institute of Environmental Research)
Park, Sunhwa (National Institute of Environmental Research)
Kim, Ki-In (Horticultural Science Department, Mokpo National University)
Jeon, Sang-Ho (National Institute of Environmental Research)
Song, Dahee (National Institute of Environmental Research)
Kim, Deok-hyun (National Institute of Environmental Research)
Kim, Tae-Seung (National Institute of Environmental Research)
Yun, Seong-Taek (Department of Earth and Environmental Sciences, Korea University)
Chung, Hyen Mi (National Institute of Environmental Research)
Kim, Hyun-Koo (National Institute of Environmental Research)
Publication Information
Korean Journal of Soil Science and Fertilizer / v.50, no.5, 2017 , pp. 345-356 More about this Journal
Abstract
We investigated 52 livestock farming complexes in Gyeong-Gi and Incheon provinces based on low, medium, and high livestock density and groundwater quality. The objective of this study was to evaluate a relationship between nitrate N concentration in groundwater and animal factors, such as livestock density and animal species. 2,200 groundwater samples for 3 years from 2012 to 2014 at Gyeong-Gi and Incheon provinces were collected and analyzed for pH, EC, DO, ORP, temperature, major anions and cations, such as $NO_3-N$, ${HCO_3}^-$, ${PO_4}^-$, ${SO_4}^{2-}$, $Cl^-$, $NH_4-N$, $K^+$, $Na^+$, $Ca^{2+}$, $Mg^{2+}$, T-N, and TOC. Average concentration of total N for generated load density was $23,973g\;day^{-1}\;km^{-2}$ for cattle, $51,551g\;day^{-1}\;km^{-2}$ for pig, and $52,100g\;day^{-1}\;km^{-2}$ for poultry. For animal feeding species, average ratio for generated load over discharge load was 16.1% for cattle, 7.8% for pig, and 7.1% for poultry. Therefore, cattle feeding region is highly vulnerable for water pollution compared to pig and poultry feeding areas. The concentrations of chloride, nitrate, and total N in the groundwater samples were higher at high animal farming regions than other regions. The average concentration of nitrate, and chloride in groundwater samples was $5.0mg\;L^{-1}$, $16.6mg\;L^{-1}$ for low livestock density, $6.9mg\;L^{-1}$, $17.7mg\;L^{-1}$ for medium livestock density and $7.6mg\;L^{-1}$, $22.7mg\;L^{-1}$ for high livestock density and total nitrogen (T-N) was $7.7mg\;L^{-1}$ for low livestock density, $9.4mg\;L^{-1}$ for medium livestock density, $10.7mg\;L^{-1}$ for high livestock density. In conclusion, based on this research, for managing groundwater quality near livestock farming regions, $Ca-(Cl+NO_3)$ group from the Piper diagram is more efficient than using 19 factors for water quality standard.
Keywords
Groundwater; Nitrate; Livestock; Generated load; Infiltrated load;
Citations & Related Records
Times Cited By KSCI : 6  (Citation Analysis)
연도 인용수 순위
1 Kim, D.W., M.J. Jang, and I.S. Han. 2014. Determination of focused control pollutant source by analysis of pollutant delivery characteristics in unit watershed upper Paldang lake. J. Korean Soc. Environ. Eng. 36(5):367-377.   DOI
2 Kim, E.Y., D.C. Koh, K.S. Ko, and I.W. Yeo. 2008. Prediction of nitrate contamination of groundwater in the northern Nonsan area using multiple regression analysis. J. Soil Groundwater Environ. 13(5):57-73.
3 Kim, H.C., W.C. Lee, J.G. Kim, S.J. Hong, K.M. Kim, Y.S. Cho, S.E. Park, and J.H. Kim. 2011, Assessment of permissible inflow load for water quality management in Yeoja Bay. J. Korean Soc. Mar. Environ. Saf. 17(4):345-356.   DOI
4 Kim, H.J., D.I. Kaown, B. Mayer, J.Y. Lee, Y.J. Hyun, and K.K. Lee. 2015. Identifying the sources of nitrate contamination of groundwater in an agricultural area (Haean basin, Korea) using isotope and microbial community analyses. Sci. Total Environ. 533:566-575.   DOI
5 Kim, R.H., J.H. Kim, J.S. Ryu, and H.W. Chang. 2006. Salinization properties of a shallow groundwater in a coastal reclaimed area, Yeonggwang, Korea. Environ. Geol. 49:1180-1194.   DOI
6 Kim, Y.T. 2003. Hydrogeochemistry of shallow groundwater in a small catchment, Kyunggi-Do, Korea. Yonsei University, Korea.
7 Kim, Y.T. and N.C. Woo. 2003. Nitrate contamination of shallow groundwater in an agricultural area having intensive livestock facilities. J. Soil Groundwater Environ. 8(1):57-67.
8 Kim, Y.T., N.C. Woo, G.S. Lee, and Y. Song. 2005. Seasonal variation of surface water quality in a catchment contaminated by $NO_3$-N. J. Soil Groundwater Environ. 10(2):20-27.
9 Koh, D.C., B. Mayer, K.S. Lee, and K.S. Ko, 2010, Land-use controls on sources and fate of nitrate in shallow groundwater of an agricultural area revealed by multiple environmental tracers, J. Contam. Hydrol. 118(2):62-78.   DOI
10 Krapac, I.G., W.S. Dey, W.R. Roy, C.A. Smyth, E. Storment, S.L. Sargent, and J.D. Steele. 2002. Impacts of swine manure pits on groundwater quality. Environ. Pollut. 120(2):475-492.   DOI
11 McDowel, P.W., R.D. Barker, A.P. Butcher, M.G. Culshaw, P.D. Jackson, D.M. McCann, B.O. Skipp, S.L. Matthews, and J.C.R. Arthur. 2002. Geophysics in engineering investigations. CIRIA. C562.
12 Medison, R.J. and J.O. Brunett. 1985. Overview of the occurrence of nitrate in groundwater of the United States. U.S. Geol. Surv. Water-Supply Pap. 2275:93-105.
13 Ministry of Environment. 2011. Official testing method with respect to drinking water (In Korean).
14 Ministry of Environment. 2011. Official testing method with respect to water pollution process (In Korean).
15 Ministry of Environment. 2016. 2015 groundwater quality monitoring network operation result (In Korean).
16 Park, S. 2014. Characterization of nitrate contamination of groundwater using multivariate statistical analysis (Hongseong and Iksan), Chonbuk National University.
17 National Institute of Environmental Research (NIER). 2012. Water pollution amount management technical guidance.
18 National Institute of Environmental Research (NIER). 2016. Survey on pollution condition such as groundwater background concentration in livestock complex area ('16) (In Korean).
19 Park, H.R., M.K. Kim, and S.P. Hong. 2015. Characteristics of nitrate contamination of groundwater. J. Environ. Impact Assess. 24(1):87-98.   DOI
20 Song, X., I. Kayane, T. Tanaka, and J. Shimada. 1999. Conceptual model of the evolution of groundwater quality at the wet zone in Sri Lanka. Environ. Geol. 39(2):149-164.   DOI
21 Benefield, L.D., J.F. Judikins, and B.L. Weand, 1982, Process chemistry for water and wastewater treatment. Prentice Hall Inc, Englewood Cliff, New Jersey. p. 449.
22 Ucisik, A.S. and P. Wiltshire. 1999. Experimental validation of forensic evidence: a study of the decomposition of buried pigs in a heavy clay soil. Forensic Sci. Int. 101:113-122.   DOI
23 USGS. 2010. National field manual for the collection of water-quality data.
24 Woo, N.C., M.J. Chio, S.W. Cheong, and S.G. Lee. 1999. A groundwater quality assessment of the shallow aquifers in the rural area of Yongin, J. Soil Groundwater Environ. 6(2):53-58.
25 Xue, D., J. Botte, B. De Baets, F. Accoe, A. Nestler, P. Tayler, O. van Cleemput, M. Berglund, and P. Boeckx. 2009. Present limitations and future prospects of stable isotope methods for nitrate source identification in surface-and groundwater. Water Res. 43:1159-1170.   DOI
26 Appelo, C.A.J. and D. Postma. 2005. Geochemistry groundwater and pollution. 2nd edition. p. 16-19.
27 ARMC (Agricultural and Resource Management Council of Australia and New Zealand). 1996. AUSVET disposal operational procedures manual. http://www.aahc.com.au/ausvetplan/disfn12.pdf.
28 Barry M.O., J.J. Miller, S.J. Rodvang, and L.J. Yanke. 2005. Soil and groundwater quality under a cattle feedlot in Southern Alberta. Water Qual. Res. J. Can. 40(2):131-144.   DOI
29 BIS-GIS.com. http://www.biz-com (2013. 08. 07).
30 Chadha, D. K. 1999. A proposed new diagram for geochemical classification of natural waters and interpretation of chemical data. Hydrogeol. J. 7:431-439.   DOI
31 Hyeon, G.T. 2011. Studies on the contamination properties of soil and groundwater in a densely populated livestock area in Jeju Island. Jeju University, Korea.
32 Chandler, J. 1989. Nitrate in groundwater. CRC Press, Boca Raton. p. 1-109.
33 European Commission. 2011. On implementation of council directive 91/676/EEC concerning the protection of waters against pollution caused by nitrates from agricultural sources based on member state reports for the period 2004-2007.
34 Fraser, H.W. 2003. Proper burial techniques for small farm animals and poultry mortalities under 25 kg, OMAFRA Factsheet, Queen's Printer for Lund, R.D., Kruger, I., and Weldon, P. options for the mechanized slaughter and disposal of contagious diseased animals-a discussion paper.
35 Gooddy, D.C., P.J.A. Withers, H.G. Mcdonald, and P.J. Chilton. 1998. Behaviour and impact of cow slurry beneath a storage lagoon: II. Chemical composition of chalk porewater after 18 years. Water, Air, Soil Pollut. 107(1):51-72.   DOI
36 Goovaerts, P. 1997. Geostatistics for natural resources evaluation. Oxford University Press, Oxford.
37 Jeon, S.R., S.K. Jung, H.S. Kim, S.K. Jung, Y.U. Lee, and J.I. Chung. 2011. Hydrogeochemical characteristics and estimation of nitrate contamination sources of groundwater in the Sunchang area, Korea. J. Geol. Soc. Korea. 47(2):185-197.
38 Jung, G.J. and J.Y. Lee. 2007. A study on the characteristics of landfill gas and leachate in Nanjido after constructed final cover system. J. Korea Soc. Waste Manage. 24(8):744-751.
39 Kim, C.G. 1999. Efficiency improvement of manure management policies for developing sustainable livestock industry. J. Livest. Manage. 15(2):355-374.
40 Ki, M.G., D.C. Koh, H. Yoon, and H.S. Kim. 2013. Characterization of nitrate contamination and hydrogeochemistry of groundwater in an agricultural area of northeastern Hongseong. J. Soil Groundwater Environ. 18(3):33-51.   DOI