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Reduction of Pollutant Load by Small Pond in a Rice Paddy Applied with Pig Manure Compost

돈분퇴비가 시용된 논의 양분유출 저감을 위한 저류지 효과

  • Kim, Min-Kyeong (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA) ;
  • Kim, Myung-Hyun (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA) ;
  • Choi, Soon-Kun (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA) ;
  • Cho, Kwang-Jin (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA) ;
  • Hong, Seong-Chang (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA) ;
  • Jung, Goo-Bok (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA) ;
  • So, Kyu-Ho (Climate Change and Agroecology Division, National Academy of Agricultural Science, RDA)
  • 김민경 (국립농업과학원 농업환경부 기후변화생태과) ;
  • 김명현 (국립농업과학원 농업환경부 기후변화생태과) ;
  • 최순군 (국립농업과학원 농업환경부 기후변화생태과) ;
  • 조광진 (국립농업과학원 농업환경부 기후변화생태과) ;
  • 홍성창 (국립농업과학원 농업환경부 기후변화생태과) ;
  • 정구복 (국립농업과학원 농업환경부 기후변화생태과) ;
  • 소규호 (국립농업과학원 농업환경부 기후변화생태과)
  • Received : 2014.10.20
  • Accepted : 2014.11.12
  • Published : 2014.12.30

Abstract

Pig slurry has been considered as environmental waste to be treated in an appropriate manner. Moreover, water-born pollution loads by agricultural non-point source(NPS) pollution are expected to become intensified due to ongoing precipitation change. This study was conducted to develop a best management practice to reduce NPS pollution load by agricultural activity with pig manure compost. An eco-friendly way, small drainage pond, was suggested in this study to avoid direct drainage of agricultural runoffs and eventually reduce the amount of pollutants discharged into the surrounding aqua-environment. A small pond($12m^2$) was constructed at the corner of a rice paddy field($17,15m^2$) located in Suwon, Korea. Water was allowed to drain only via a small drainage pond. Sampling was repeatedly made at two locations, one from an entrance and the other from an exit of a pond, during the rice cultivation period(May to October, 2013). Generally, sampling was made only when runoff water drained through a pond, such as during and/or after rain(irrigation). The water quality analysis showed that all quality parameters(SS, $COD_{Mn}$, T-N, and T-P) were improved as water passed through the pond. The amount of runoff water was reduced by 67.8%. Suspended solids and $COD_{Mn}$ concentrations were reduced by 79.8% and 71.9%, respectively. In case of T-N and T-P amounts, the reduction rates were 73.6% and 74.9%, respectively. Our data implies that agricultural NPS pollution from rice paddy fields with pig manure-based fertilizer can be effectively managed when an appropriate drainage water management practice is imposed.

양돈분뇨의 처리는 환경문제 해결과 자원으로서 이용 등이 중요한 의미가 있다. 따라서 본 연구는 이 두 가지 문제를 동시에 해결하고자 돈분퇴비가 시용된 논의 배수의 오염부하 저감을 위한 저류지 효과를 구명하고자 수행하였다. 경기도 수원시 권선구 서둔동 국립농업과학원 기후변화생태과 시험포장($17,15m^2$)에서 배수로 말단에 논 저류지($12m^2$)를 조성하였다. 2013년 5월부터 10월까지 영농기간 동안 강우사상시 저류지 유입 전인 논 배출수와 저류지를 통과한 배출수의 토사 및 $COD_{Mn}$, T-N, T-P의 부하량을 평가하여 저류지의 효과를 평가하였다. 영농기간 동안 논 저류지를 이용한 논의 유출량은 67.8% 저감되었고 토사를 포함한 부유물질과 $COD_{Mn}$의 총 부하량은 각각 79.8%와 71.9% 저감되었다. 또한 T-N과 T-P의 총 부하량은 각각 73.6%와 74.9% 저감되었다. 따라서 경지기반 정리되어 가축분뇨 퇴 액비 시용이 용이한 논의 경우에는 외부 수계로 배출되기 전 저류지를 설치하면 영양염류의 배출이 저감될 것으로 생각된다.

Keywords

References

  1. Ministry of Agriculture, Food and Rural Affairs, Outcome of animal waste generation and recycling('06-'12), (2013).
  2. Alburquerque J. A., Fuente, de la., Campoy, M., Carrasco, L., Nájera, I., Baixauli, C., Caravaca, F., Roldan, A., Cegarra, J. and Bernal, M.P., "Agricultural use of digestate for horticultural crop production and improvement of soil properties", EUR J AGRON., 43, pp. 119-128. (2012). https://doi.org/10.1016/j.eja.2012.06.001
  3. Kim, H. C., Yeo, J. K., Koo, Y. B., Shin, H., Choi, J. Y. and Lee, H. H., "Growth and Biomass Production of Fast Growing Tree Species Treated with Slurry Composting and Biofiltration Liquid Fertilizer", Korean J. Soil Sci. Fert., 44, pp. 206-214. (2011). https://doi.org/10.7745/KJSSF.2011.44.2.206
  4. Kim, H. Y., Gwak, K. S., Kim H. Y., Ryu, K. O., Kim, P. G., Cho, D. H., Choi, J. Y. and Choi, I. G., "Effect of Treatment amounts of slurry composting and biofiltration liquid fertilizer on growth characteristics and bioethanol production of yellow poplar", J. Korean Wood Sci. Technol., 39, pp. 459-468. (2011). https://doi.org/10.5658/WOOD.2011.39.6.459
  5. Takeda, I., Kunimatsu, T., Kobayashi, S. and Maruyama, T., "Pollutants balance of a paddy field area and its loadings in the water system-Studies on pollution loadings from a paddy field area(II)", Trans. of the JSIDRE., 153, pp. 63-72. (1991).
  6. Kim, M. K., Roh, K. A., Lee, N. J., Seo, M. C. and Koh, M. H., "Nutrient load balance in large-scale paddy fields during rice cultivation", Korean J. Soil Sci. Fert., 38, pp. 113-171. (2005).
  7. An, I. S., Kim, Y. C. and Lee, D. R., "Discharge of the pollutants from rice paddies during the period of cultivation", J. of KSWQ., 23, pp. 266-273. (2007).
  8. Kim, M. K., Kwon, S. I., Kang, S.S ., Jung, G. B., Hong, S. C., Chae, M. J. and So, K. H., "Minimizing nutrient loading form SCB treated paddy rice fields through water management", Korean J. Soil Sci. Fert., 45, pp. 671-675. (2012). https://doi.org/10.7745/KJSSF.2012.45.5.671
  9. Kim, M. K., Kwon, S. I., Jung, G. B., Hong, S. C., Chae, M. J., Yun, S. G. and So, K. H., "Small-Scale Pond Effects on Reducing Pollutants Load from a Paddy Field", Korean J. Environ Agric., 32, pp. 347-350. (2013).
  10. Rural Development Administration, 2011 Annual Report of the Monitoring Project on Agro-Enviroment Quality, RDA, Suwon, Korea, (2011).
  11. National Institute of Agricultural Science and Technology, Methods of soil and plant analysis, National Institute of Agricultural Science and Technology, RDA, Suwon, Korea, (2002).
  12. American Public Health Association, Standard Methods for Examinations of Water and Wastewater, 20th edition, Washington D.C., USA, (1998).
  13. Ministry of Environment, Standard methods of water sampling and analysis, Ministry of Environment, Incheon, Korea, (2008).
  14. Mitsch, W. J. and Gosselinl, J. G., Wetlands, 3nd edition by Mitsch, W. J., Gosselinl, J. G., John Wiley & Sons, New York, USA, (2000).
  15. Cooke, J. G., "Nutrient transformations in a natural wetland receiving sewage effluent and the implications for waste treatment", Wat. Sci. Tech., 29, pp. 209-217. (1994).
  16. Spieles, D. J. and Mitsch, W., "The effects of season and hydrologic and chemical loading on nitrate retention in constructed wetlands: a comparison of low and high nutrient riverine systems", Ecol. Eng., 14, pp. 77-91, (2000).
  17. Kim, H. C., Yoon, C. G., Um, H. Y., Kim, H. J. and Haam, J. H., "Analysis of treatment efficiency according to open-water in constructed wetland", J. of KSWQ., 24, pp. 709-717, (2008).
  18. Machlum, T., Warner, W. S., Staalnacke, P., and Jenssen, P. D., Leachate treatment in extended aeration lagoons and constructed wetlands in Norway, CRC Press, Florida, USA, (1998).