DOI QR코드

DOI QR Code

A Study on Management of Seafood Wastewater Treatment Facility using Submerged MBR

침지식 MBR을 이용한 수산물 폐수처리장 운영에 관한 연구

  • Choi, Yong-Bum (Dept. of Earth and Environmental Engineering, Kangwon National University) ;
  • Lee, Hae-Seung (Dept. of Five.Environmental Disaster, Gangwon Provincial College) ;
  • Han, Dong-Joon (Dept. of Five.Environmental Disaster, Gangwon Provincial College) ;
  • Kwon, Jae-Hyouk (Dept. of Earth and Environmental Engineering, Kangwon National University)
  • 최용범 (강원대학교 지구환경시스템공학과) ;
  • 이해승 (강원도립대학 소방환경방재과) ;
  • 한동준 (강원도립대학 소방환경방재과) ;
  • 권재혁 (강원대학교 지구환경시스템공학과)
  • Received : 2015.10.08
  • Accepted : 2015.11.06
  • Published : 2015.11.30

Abstract

The survey revealed that, due to the discharge characteristics of seafood wastewater, irregular inflow loads were caused, making it difficult to treat the wastewater safely. It is crucial for the operation of pressure and floating tanks for the treatment of high-concentration organic wastewater such as seafood wastewater. The survey of operation factors for the pressure and floating tanks revealed this: A/S ratio 0.05 (design criteria 0.01), the pressurized air pressure 8bar(design criteria 6bar), the pressure tank pressure 6bar (design criteria 4.5bar), and HRT 60sec(design criteria: 10sec). Also, the recirculation rate was changed to over 40%(design criteria: 30%), and the surface load rate was changed to under $13.7m^3/m^2{\cdot}hr$(design criteria: under $17.7m^3/m^2{\cdot}hr$); thus, compared to the initial design criteria, the operation factors were changed according to inflow characteristics, thus enhancing the pressure and floating tank performance. The survey of inflow load revealed BOD 140.7%, $COD_{Mn}$ 120.32%, and SS 106.3%, compared to the inflow design criteria, as well as T-N 135.5% and T-P173.3%, higher than the design criteria. The survey of the treatment facility annual operation cost revealed high portions in sludge treatment cost(27.7%) and chemicals costs(26.0%), and the sludge treatment cost will likely further increase due to the ban on ocean dumping. The unit cost for the treatment of seafood wastewater was found to be KRW 3,858 per ton, more than 27 times higher than the sewage treatment cost(KRW 142.6/ton), presumably because the seafood wastewater contains high-concentration organic substances and nutritive salts.

수산물 가공폐수의 배출특성 결과, 불규칙한 유입부하로 안정적인 처리에 어려움이 있는 것으로 조사되었다. 수산물 가공폐수와 같은 고농도 유기성 폐수처리에는 가압부상조 운영이 매우 중요하다. 가압부상조의 운전 factor를 조사한 결과, A/S ratio 0.05(설계기준 0.01), 가압공기 압력은 8bar(설계기준 6bar), 가압탱크 압력은 6bar(설계기준 4.5bar), HRT는 60sec(설계기준 10sec)로 운영하였다. 또한 재순환율은 40% 이상(설계기준 30%), 표면 부하율은 $13.7m^3/m^2{\cdot}hr$ 이하(설계기준 $17.7m^3/m^2{\cdot}hr$ 이하)로 변경하여 최초 설계기준에 비하여 운전 factor를 유입특성에 따라 변화시켜 가압부상조의 성능을 향상시켰다. 유입부하 검토결과, BOD는 유입 설계기준 대비 140.7%, $COD_{Mn}$는 120.32%, SS는 106.3%로 조사되었으며, T-N은 135.5%, T-P는 173.3%로 설계기준보다 높게 유입되고 있었다. 처리시설의 연간 운영비를 조사한 결과, 슬러지 처리비(27.7%)와 약품비(26.0%)가 높은 비중을 차지하였으며, 슬러지 처리비는 해양투기 금지로 더욱 상승할 것으로 판단된다. 수산물 가공폐수 처리단가는 1톤당 3,858원으로 하수처리비용(142.6원/ton)에 비해 27배 이상으로 높게 조사되었는데, 이는 고농도의 유기물과 영양염류를 포함하고 있기 때문으로 판단된다.

Keywords

References

  1. Choi. Y. B, Han. D. J, Lee. H. S, Kwon. J. K, "Effect of the Salt Concentration in Seafood Wastewater on the High-Rate Anaerobic Digestion", J. Kor. Soc Environ. Eng, Vol.35, No.10 pp. 730-736, 2013. DOI: http://dx.doi.org/10.4491/ksee.2013.35.10.730
  2. Paik. B. C, Shin. H. S, "Treatment of Fish Processing Wastewater using Sequencing Batch Reactor(SBR)", J. Kor. Soc. Water Wastewater, 1, pp. 18-126, 1994.
  3. Jeong. B. C, Park. K. S, Jeong. B. G, "Simultaneous Removal of Organic and Nitrogen in the Treatment of Fish Processing Wastewater using Entrapped Mixed Microbial Cell(EMMC) Process", J. Kor. Soc. Water Qua, Vol.22, No.3 pp. 492-497, 2006.
  4. Choi. Y. B, "Effects of Salt on the Biological Treatment of Seafood Wastewater", Department of Environmental Engineering, Kangwon National University of Korea. TD 628-11-348, 2011.
  5. Cho. I. H, Kim. J. T, "Trends in the Technology and Market of Membrane Bioreactors(MBR) for Wastewater Treatment and Reuse and Development Directions", The Membrane Society of Korea, Vol.23, No.1 pp. 24-44, 2013.
  6. K. Sutherland, "The rise of membrane bioreactors", Filtration & Separation, Vol.47, No.5 pp.14-16, 2010. DOI: http://dx.doi.org/10.1016/S0015-1882(10)70208-1
  7. S. Judd, C. Judd, "The MBR book: Principles and applications of membrane bioreactors for water and wastewater treatment", pp. 4-5, 2nd Edition Elsevier, Oxford, UK, 2010.
  8. Choi. Y. B, Kwon. J. K, Rim. J. M, "Effect of the Salt Concentration in Seafood Processing Wastewater on the Anaerobic Ultimate Biodegradability and Multiple Decay Rate of Organic Matter", J. Kor. Soc Environ. Eng, Vol.32, No.11 pp. 1038-1045, 2010.
  9. Jeong. B. C, Park. K. S, Jeong. B. G, "Simultaneous Removal of Organic and Nitrogen in the Treatment of Fish Processing Wastewater using Entrapped Mixed Microbial Cell (EMMC) Process", J. Kor. Soc on Water Quality, Vol.22, No.3 pp. 492-497, 2016.
  10. Choi. B. Y, Choi. Y. B, Han. D. J, Kwon. J. H, "Treatment of Seafood Wastewater using an Improved High-rate Anaerobic Reactor", Journal of the Korea Academia-Industrial Cooperation Society, Vol.15, No.12 pp. 7443-7450, 2014. DOI: http://dx.doi.org/10.5762/KAIS.2014.15.12.7443
  11. Choi. Y. B, Kwon. J. K, Rim. J. M, "Effect of Salt Concentration on the Aerobic Biodegradability of Sea Food Wastewater", J. Kor. Soc Environ. Eng, Vol.32, No.3 pp. 256-263, 2010.
  12. Cui. Y. W, Peng. Y. Z, Peng C. Y, Gan X. Q, Ye. L, "Achieving biological nitrogen removal via nitrite by salt inhibition.", Water Sci. & Technol, Vol.53, No.6 pp. 115-122, 2006. DOI: http://dx.doi.org/10.2166/wst.2006.183
  13. METCALF & EDDY/Aecom, Wastewater Engineering Treatment and Resource recover, 5th ed, MCGraw-Hill, New York, 2014.
  14. Lee. H. W, An. K. H, Choi. J. S, Kim. S. K, Oh. J. J, "Effect of Trans-Membrane Pressure on Reversible and Irreversible Fouling Formation of Ceramic Membrane", J. Kor. Soc Environ. Eng, Vol.34, No.9 pp. 637-643, 2012. DOI: http://dx.doi.org/10.4491/ksee.2012.34.9.637

Cited by

  1. The Practical Study for the Treatment of Fish Processing Saline Wastewater Using Immersed MBR vol.38, pp.9, 2016, https://doi.org/10.4491/KSEE.2016.38.9.469