DOI QR코드

DOI QR Code

The Characteristics of Organic Degradation and Ammonia Volatilization in the Liquid Composting of Pig Slurry

  • 투고 : 2017.07.04
  • 심사 : 2017.09.11
  • 발행 : 2017.10.31

초록

This study was carried out for 30 days in aeration type and agitation type reactor to characterize organic matter decomposition and ammonia volatilization during the liquid composting of pig slurry, and organic matter and nitrogen removal rate through mass balance analysis was analyzed. In the aeration type reactor, the pH increased from 7.0 to 9.13, and TS 34.5%, VS 33.4%, $BOD_5$ 71.2%, $COD_{Cr}$ 62.3% and TOC 83.2% were removed. In addition, 44.6% of TN and 65.0% of ${NH_4}^+-N$ were removed. In the agitation type reactor, the pH increased from 7.0 to 8.10, and the removal rates of TS 0.9%, VS 0.5%, $COD_{Cr}$ 27.5%, $BOD_5$ 28.9% and TOC 41.3% were obtained. And TN and ${NH_4}^+-N$ showed removal rate of 25.3% and 29.2%, respectively. The first order kinetics constant related to $BOD_5$ degradation was $-0.039day^{-1}$ for aerobic liquid composting and $-0.013day^{-1}$ for agitated reactor. Nitrogen loss in aerobic liquid composting was about 2.3 times higher than that of agitated reactor, whereas FAN/TAN in aerobic liquid composting was about 7.9 times higher than that of agitation type reactor. Therefore, despite the low FAN/TAN in the agitation type reactor, the nitrogen loss rate was relatively high.

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참고문헌

  1. Acharya, C.N. 1935. Studies on the anaerobic decomposition of plant materials: The decomposition of plant substances of varying composition. Biochem. J. 29:1459. https://doi.org/10.1042/bj0291459
  2. APHA (American Public Health Association). 1998. Standard methods for the examination of water and wastewater, 20th Ed. Washington, D.C.
  3. Chantigny, M.H., D.A. Angers, G. Belanger, P. Rochette, N. Eriksen-Hamel, S. Bittman, K. Buckley, D. Masse, and M.-O. Gasser. 2008. Yield and nutrient export of grain corn fertilized with raw and treated liquid swine manure. Agron. J. 100:1303-1309. https://doi.org/10.2134/agronj2007.0361
  4. Chantigny, M.H., D.A. Angers, P. Rochette, G. Belanger, D. Masse, and D. Cote. 2007. Gaseous nitrogen emissions and forage nitrogen uptake on soils fertilized with raw and treated swine manure. J. Environ. Qual. 36:1864-1872. https://doi.org/10.2134/jeq2007.0083
  5. Chantigny, M.H., P. Rochette, D.A. Angers, D. Masse, and D. Cote. 2004. Ammonia volatilization and selected soil characteristics following application of anaerobically digested pig slurry. Soil Sci. Soc. Am. J. 68:306-312. https://doi.org/10.2136/sssaj2004.3060
  6. Daverede, I.C., A.N. Kravchenko, R.G. Hoeft, E.D. Nafziger, D.G. Bullock, J.J. Warren, and L.C. Gonzini. 2004. Phosphorus runoff from incorporated and surface-applied liquid swine manure and phosphorus fertilizer. J. Environ. Qual. 33:1535-1544. https://doi.org/10.2134/jeq2004.1535
  7. Glathe, H. and W. Seidel. 1937. Untersuchungen uber die aufbewahrung des stalldungers unter streng anaeroben bedingungen. J. Plant Nutr. Soil Sci. 5:118-128.
  8. Hansen, K.H., I. Angelidaki, and B.K. Ahring. 1998. Anaerobic digestion of swine manure: inhibition by ammonia. Water Res. 32(1):5-12. https://doi.org/10.1016/S0043-1354(97)00201-7
  9. Harris, D.C. 2010. Quantitative chemical analysis. Macmillan.
  10. Jansson, S.L. and F.E. Clark. 1952. Losses of nitrogen during decomposition of plant material in the presence of inorganic nitrogen. Soil Sci. Soc. Am. J. 16:330-334. https://doi.org/10.2136/sssaj1952.03615995001600040002x
  11. Jung, K.Y., N.J. Cho, and Y.G. Jeong. 1998. Comparison of liquid composting efficiency using liquid pig manure in different condition. Korean J. Environ. Agric. 17(4):301-305.
  12. Kim, M.K., S.I. Kwon, S.S. Kang, G.B. Jung, S.C. Hong, M.J. Chae, and K.H. So. 2012. Minimizing nutrient loading from SCB treated paddy rice fields through water management. Korean J. Soil Sci. Fert. 45(5):671-675. https://doi.org/10.7745/KJSSF.2012.45.5.671
  13. Kim, M.K., S.I. Kwon, H.C. Chun, G.B. Jung, and K.K. Kang. 2013. Impacts of pig manure-based liquid fertilizer agricultural application on the water quality of agricultural catchment. J. Environ. Prot. 4:195-200. https://doi.org/10.4236/jep.2013.42023
  14. Kirchmann, H. 1985. Losses, plant uptake and utilisation of manure nitrogen during a production cycle. Acta Agric. Scand. Suppl. 24:1-77.
  15. Kirchmann, H. and E. Witter. 1989. Ammonia volatilization during aerobic and anaerobic manure decomposition. Plant Soil 115:35-41. https://doi.org/10.1007/BF02220692
  16. KPPA (Korea Pork Producers Association). 2014. The management actual condition survey for the pig farmhouse in 2014 (in Korean).
  17. Kwon, Y.R., J. Kim, B.K. Ahn, and S.B. Lee. 2010 Effect of liquid pig manure and systematic fertilizer on rice growth, yield, and quality. Korean J. Environ. Agric. 29(1):54-60. https://doi.org/10.5338/KJEA.2010.29.1.054
  18. Lee, J.H., W.R. Go, A. Kunhikrishnan, J.H. Yoo, J.Y. Kim, and W.I. Kim. 2011. Chemical composition and heavy metal contents in commercial liquid pig manures. Korean J. Soil Sci. Fert. 44(6):1085-1088. https://doi.org/10.7745/KJSSF.2011.44.6.1085
  19. MAFRA (Ministry of Agriculture, Food and Rural Affairs), ME (Ministry of Environment), NACF (National Agricultural Cooperative Federation). 2009. Standard design of livestock manure utilizing facility (in Korean).
  20. MAFRA (Ministry of Agriculture, Food and Rural Affairs). 2013. Resource recovery measures of livestock manure for the mid and long term (in Korean).
  21. McCormick, R.A., D.W. Nelson, A.L. Sutton, and D.M. Huber. 1984. Increased n efficiency from nitrapyrin added to liquid swine manure used as a fertilizer for corn. Agron. J. 76:1010-1014. https://doi.org/10.2134/agronj1984.00021962007600060034x
  22. Park, J.M., T.J. Lim, S.B. Kang, I.B. Lee, and Y.I. Kang. 2010. Effect of pig slurry fertigation on soil chemical properties and yield of tomato (Lycopersicon esculentum Mill.). Korean J. Soil Sci. Fert. 43(5):610-615.
  23. Russell, E. and E. Richards. 1917. The changes taking place during the storage of farmyard manure. J. Agric. Sci. 8:495-563. https://doi.org/10.1017/S0021859600003087
  24. Shin, D.E., D.A. Kim, J.S. shin, K.C. Song, J.K. Lee, S.H. Yun, W.H. Kim, and J.G. Kim. 1998. Studies on the slurry-application of winter rye. J. Korean Grassl. Sci. 18(3):243-250.
  25. Tabbara, H. 2003. Phosphorus loss to runoff water twenty-four hours after application of liquid swine manure or fertilizer. J. Environ. Qual. 32:1044-1052. https://doi.org/10.2134/jeq2003.1044
  26. Tenney, F.G. and S.A. Waksman. 1930. Composition of natural organic materials and their decomposition in the soil: V. Decomposition of various chemical constituents in plant materials, under anaerobic conditions. Soil Sci. 30:143. https://doi.org/10.1097/00010694-193008000-00004
  27. Westerman, P.W., J.R. Bicudo, and A. Kantardjieff. 2000. Upflow biological aerated filters for the treatment of flushed swine manure. Bioresour. Technol. 74:181-190. https://doi.org/10.1016/S0960-8524(00)00028-6
  28. Whalen, S.C. 2000. Nitrous oxide emission from an agricultural soil fertilized with liquid swine waste or constituents. Soil Sci. Soc. Am. J. 64:781-789. https://doi.org/10.2136/sssaj2000.642781x
  29. Yoon, Y.M., Y.J. Kim, and C.H. Kim. 2009. Economical efficiency analysis for the resource utilization method (compost and liquid fertilizer) of piggery biomass. Rural Econ. 31(6):39-62 (in Korean).