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반부숙상태 돈분뇨 액비의 저장기간 및 폭기여부에 따른 특성 변화

Changes in Characteristics of Semi-cured Pig Manure Liquid Fertilizer according to the Storage Duration and Aeration

  • 정광화 (국립축산과학원 축산환경과) ;
  • 박회만 (국립농업과학원 수확후관리공학과) ;
  • 이동준 (국립축산과학원 축산환경과) ;
  • 김중곤 (국립축산과학원 축산환경과) ;
  • 김현종 (국립축산과학원 축산환경과)
  • Jeong, Kwang-Hwa (Animal Environment Division, National Institute of Animal Science) ;
  • Park, Hoe-Man (Postharvest Engineering Division, National Institute of Agricultural Sciences) ;
  • Lee, Dong-Jun (Animal Environment Division, National Institute of Animal Science) ;
  • Kim, Jung-Kon (Animal Environment Division, National Institute of Animal Science) ;
  • Kim, Hyunjong (Animal Environment Division, National Institute of Animal Science)
  • 투고 : 2022.11.03
  • 심사 : 2022.12.08
  • 발행 : 2022.12.30

초록

현재 국내 양돈농가에서 발생하는 돼지분뇨 성상은 수분함량이 97% 정도인 슬러리 형태가 대부분이다. 돈사에서 배출되는 돼지분뇨 슬러리는 돼지의 분뇨와 돈사 내부 청소 물 등이 혼합된 성상의 액상물질이다. 본 연구에서는 공기공급 여부와 저장기간의 경과에 따른 돼지분뇨 액비의 부숙정도와 성상변화를 분석하기 위하여, 국내에서 운용 중인 액비화시설의 후단 공정에서 채취한 돼지분뇨 슬러리를 재료로 하여 120일 동안 실험을 수행하였다. 밀폐형 회분식 반응조를 이용하여 실험을 수행한 결과, 돼지분뇨 슬러리 액비의 부숙도는 공기공급구가 비공급구에 비해 더 양호하였으며 액비 저장기간이 경과 함에 따라서 액비가 부숙완료 상태로 빨리 전환되는 경향이 있었다. 실험개시 시에 97.90% 수준이던 액비의 수분함량 평균값이 실험 완료 시에는 공기공급구의 경우 96.82%, 비 공급구는 97.33% 수준을 나타냄으로써 공기공급구에서의 수분함량 감소가 상대적으로 더 높았다. 실험개시시에 8.82 수준이었던 액비의 pH는 실험완료 시에 공기공급구에서는 7.57, 비 공급구에서는 8.75 수준으로 변화하였다. 액비 중의 질소함량은 실험개시 시에 평균 0.198 mg/L 수준이었으나 실험완료 시에는 공기공급구에서는 0.076 mg/L, 비 공급구에서는 0.121 mg/L 수준으로 낮아졌다. 액비 중의 인산(P2O5)농도는 저장기간의 경과에 따라 비폭기처리구가 폭기처리구에 비해 감소 정도가 상대적으로 더 높았다. 실험결과를 종합해볼 때 돼지분뇨 액비에 공기를 공급하는 경우 그리고 저장기간을 길게 하였을 때 액비품질이 개선되는 것으로 판단된다.

Currently, most of the pig manure generated from pig farms in Korea is in the form of a slurry with a moisture content of about 97%. Pig manure slurry is a mixture of pig manure and cleaning water in the pig house. In this study, changes in properties of pig manure liquid fertilizer according to whether air was supplied or not and with the passage of storage period were analyzed for 120 days. During the experimental period, the degree of maturity of the pig manure liquid fertilizer was higher in the experimental closed batch reactors supplied with air than in the same type reactors not supplied with air. As the liquid fertilizer storage period elapsed, there was a tendency that liquid fertilizer was converted to a state of complete maturity. In the batch reactor in which air was supplied, the moisture content of pig manure slurry, which had a moisture content of 97.90%, was reduced to 96.82% at the end of the experiment. On the other hand, the moisture content in the reactor without air was reduced to 97.33%. The pH of the liquid fertilizer, which was 8.82 at the start of the experiment, changed to 7.57 in the reactor with air supplied and 8.75 in the reactor without air at the completion of the experiment. The nitrogen content in the liquid fertilizer was 0.198 mg/L on average at the start of the experiment and it was lowered to 0.076 mg/L in the air supplied reactor at the end of the experiment. On the other hand, the nitrogen content of the liquid fertilizer was lowered to 0.121 mg/L in the reactor to which air was not supplied. The phosphoric acid (P2O5) concentration in the liquid decreased higher in the liquid fertilizer filled in the reactor without air than the liquid fertilizer filled in the reactor with air supplied as the storage period elapsed. Considering the experimental results, it is considered that the quality of pig manure liquid fertilizer is improved when air is supplied to pig manure slurry and the storage period of pig manure slurry is longer.

키워드

과제정보

본 논문은 농촌진흥청 국립축산과학원 연구과제인 돈분 퇴비화 공정별 물질수지 분석 및 냄새 발생 특성 연구(PJ014780)로 이루어졌으며, 이에 감사드립니다.

참고문헌

  1. Ministry of Land, Infrastructure and Transport, "Announcement No. 2021-1251". (2021).
  2. Agricultural cooperative federation (NongHyup of Korea), "Guidebook of standard design drawings for construction of livestock manure recycling facilities". (2021).
  3. Ministry of Agriculture, Food and Rural Affairs, "Statistical data on the generation and treatment of livestock manure". (2020).
  4. Statistics Korea, Korean statistical information service, "Statistic information in the field of agriculture, forestry and fisheries". (2022).
  5. Ministry of Legislation, "Act on the Management and Use of Livestock Manure, Article 2 of the Enforcement Decree". (2022).
  6. Hwang, O. H., Park, S. K., Jung, M. W., Han, D. W., Nho, W. G. and Cho, S. B., "Effects of pH modulation on the concentrations of odorous compounds from pit slurry of a pig operation building", J. Odor and Indoor Environment, 17(10), pp. 1~10. (2018). https://doi.org/10.15250/joie.2018.17.1.1
  7. Lee, D. S., Lee, J. B., Lee, M. Y., Joo, R. N., Lee, K. S., Min, S. W., Hong, B. D. and Chung, D. T., "Establishment scheme for official standards of liquid swine manure fertilizer", Korean Journal of Agricultural Science, 43(3), pp. 360~368. (2016). https://doi.org/10.7744/KJOAS.20160038
  8. Ministry of Agriculture. and Ministry of Land, Infrastructure, "Commentary of standard blueprint for livestock manure recycling facility". (2009).
  9. Ministry of Legislation, "Act on the Management and Use of Livestock Manure, Article 2 of the Enforcement Regulations". (2022).
  10. APHA., 'Standard Methods for the Examination of Water and Wastewater, 23th Edition". (2017).
  11. Ministry of Environment, "Water Pollution Test Process Standards". (2021).
  12. Byeon, J. E., Lee, H. J., Ryoo, J. W. and Hwang, S. G., "Changes in chemical properties and effect on germination of radish seed from aeration of Co-digestate fertilizers", Korean J. Crop Sci., 65(4), pp. 508~517. (2020). https://doi.org/10.7740/KJCS.2020.65.4.508
  13. Kang, T. W., Halder J. N., Kim, S. R., Yoon, Y. M. and Lee, M. G., "Nutrient composition and heavy metal contents of matured livestock liquid fertilizer in Korea", J. of KORRA, 25(4), pp. 31~39. (2017).
  14. Lee, C. R., Oh, Y. R., Song, B. N., Jung, J. A., Cho, J. L., Lee, S. M. and An, N. H., "The fate of 15N-labeled organic materials applied to Chinese cabbages cropping system", Korean J. Soil Sci. Fert., 53(1), pp. 59~69. (2020). https://doi.org/10.7745/KJSSF.2020.53.1.059
  15. Kim, C. G., Oh, S, Y. and Yoon, Y. M., "The Characteristics of organic degradation and ammonia volatilization in the liquid composting of pig slurry", Korean J. Soil Sci. Fert., 50(5), pp. 325~335. (2017). https://doi.org/10.7745/KJSSF.2017.50.5.325
  16. Dauden, A. and Quilez, D., "Pig slurry versus mineral fertilization on corn yield and nitrate leaching in a Mediterranean irrigated environment", Europ. J. Agron., 21(1), pp. 7~19. (2004). https://doi.org/10.1016/S1161-0301(03)00056-X
  17. Lim, T. J., Lee, I. B., Kang, S. B., Park, J. M. and Hong, S. D., "Effects of continual pre-plant application of pig slurry on soil mineral nutrients and yield of Chinese cabbage", Korean Journal of Environmental Agriculture, 28(3), pp. 227~232. (2009). https://doi.org/10.5338/KJEA.2009.28.3.227
  18. Park, J. S. and Na, H. S., "Analysis of trace metal in agricultural products", Korean J. Food & Nutr., 13(6), pp. 595~601. (2000).
  19. Kim, J. P., Park, J. W., Jin, D. R. and Lee, W. S., "Contamination of metal elements in livestock wastewater treatment plants in Korea", Journal of Environmental Analysis, Health and Toxicology, 22(4), pp. 161~168. (2019). https://doi.org/10.36278/jeaht.22.4.161
  20. Jeong, C. U., Jeong, J. B., Kwon, J. O., Choi, J. H., Kim, S. A., Kang, K. H. and Lee, J. Y., "A Study on the characteristics of public livestock manures treatment plant sludge", Jeollabuk-do Institute of Health and Environment. (2011).
  21. Lee, K. H., Yoo, J. H., Park, E. J., Jung, Y. I., Tipayno, S. C., Shagol, C. C. and Sa, T. M., "Effect of swine liquid manure on soil chemical properties and growth of rice(Oryza sativa L.)", Korean J. Soil Sci. Fert., 43(6). pp. 945~953. (2010).
  22. Zeng, L. and Shannon, M. C., "Salinity effects on seeding growth and yield components of rice", Crop Science, 40(4), pp. 996~1003. (2000). https://doi.org/10.2135/cropsci2000.404996x
  23. Choi, S, H., Kim, H, I., Ahn, Y., Jang, J. R. and Oh, J. M., "Salinity effects on growth and yield components of rice", Korean J. Limnol., 37(2), pp. 248~254. (2004).
  24. Moral, R., Perez-Murcia, M. D., Perez-Espinosa, A., Moreno-Caselles, J., Paredes, C. and Rufete, B., "Salinity, organic content, micronutrients and heavy metals in pig slurries from South-eastern", Spain, Waste Manage., 28(3), pp. 367~371. (2008). https://doi.org/10.1016/j.wasman.2007.01.009
  25. Lim, R. G., Jang, J. K., Kang, T. Y., Son, J. W. and Lee, D. G., "A Study on composition and utilization of waste heat recovery system assuming aerobic liquid-composting fermentation heat", Journal of the Korea Academia-Industrial cooperation Society, 22(4), pp. 56~66. (2021). https://doi.org/10.5762/KAIS.2021.22.4.56
  26. Itoh, T., Iwabuchi, K., Maemoku, N., Sasaki, I. and Taniguro, K., "A new torrefaction system employing spontaneous self-heating of livestock manure under elevated pressure", Waste Management, 85, pp. 66~72. (2019). https://doi.org/10.1016/j.wasman.2018.12.018