Removal of Geosmin and 2-MIB using Biological Activated Carbon Process

생물활성탄(BAC) 공정을 이용한 이취미물질(geosmin, 2-MIB)의 생분해 특성평가

  • 손동민 (부경대학교 환경공학과) ;
  • 손희종 (부산광역시 상수도사업본부 수질연구소) ;
  • 이화자 (부산광역시 상수도사업본부 수질연구소) ;
  • 강임석 (부경대학교 환경공학과)
  • Received : 2008.11.15
  • Accepted : 2009.03.15
  • Published : 2009.04.15

Abstract

Tastes and odor in water caused by geosmin and 2-MIB are the major customer complaints for water utilities. Therefore, control of geosmin and 2-MIB is a worldwide concern. In this study, the effects of biofilter media type (three different activated carbons and anthracite), empty bed contact time (EBCT) and temperature on the removal of geosmin and 2-MIB in BAC filters were investigated. Experiments were conducted at three different water temperatures (5, 15 and $25^{\circ}C$) and four different EBCTs (5, 10, 15, and 20 min). The experimental results indicated that the coal based BAC retained more bacterial biomass on the surface of the activated carbon than the other BACs, and increasing EBCT or increasing water temperature also increased the geosmin and 2-MIB removal in BAC filters. To achieve above 50% of removal efficiency for geosmin and 2-MIB in a BAC filter, above 10 min EBCT at $5^{\circ}C$ and 5 min EBCT at above $15^{\circ}C$ were required. The kinetic analysis for the biodegradation of geosmin and 2-MIB indicated a first-order reaction rate at various water temperatures. Data obtained from the BAC filters at various temperatures were also used to evaluate pseudo first-order rate constants for geosmin and 2-MIB. The half-lives evaluated at 5, 15, and $25^{\circ}C$ for geosmin and 2-MIB ranged from 2.39 to 10.31 min and 3.35 to 13.97 min, respectively, which can be used to assist water utilities in designing and operating BAC system.

Keywords

References

  1. APHA, AWWA and WEF (1998) Standard Methods for the Examination of Water and Wastewater, 20th ed., Washington DC. US
  2. Bell, R.T., Ahlgren, G.M. and Ahlgren, I. (1983) Estimating bacterioplankton production by the [3H]thymidine incorporation in a eutrophic Swedish Lake, Appl. Environ. Microbiol., 45, pp.1709-1721
  3. Bruce, D., Westerhoff, P. and Brawley, C.A. (2002) Removal of 2-methylisoborneol and geosmin in surface water treatment plants in Arizona, J. Water Supply: Research and Technology-Aqua, 51(4), pp.183-197
  4. Elhadi, S.L.N., Huck, P.M. and Slawson, R.M. (2004) Impact of biomass concentrations on the removal of earthy/musty odors from drinking water by biological filters, Proceedings of 2004 AWWA Annual Conference, June 13-17, Orlando, Florida
  5. Ferguson, D.W., McGuire, M.J., Koch, B., Wolfe, R.L. and Aieta, E.M. (1990) Comparing peroxone and ozone for controlling taste and odor compounds, disinfection by-products, and microorganisms, J. AWWA., 82(4), pp.181-191
  6. Fuhrman, J.A. and Azam, F. (1982) Thymidine incorporation as a measure of heterotrophic bacterio- plankton production in marine surface waters: evaluation and field results, Mar. Biol., 66, pp.109-120 https://doi.org/10.1007/BF00397184
  7. Herzing, D.R., Snoeyink, V.L. and Wood, N.F. (1977) Activated carbon adsorption of odorous compounds 2-methylisoborneol and geosmin, J. AWWA., 69(4), pp.223-231
  8. Lalezary, S., Pirbazari, M. and McGuire, M.J. (1986) Evaluating activated carbons for removing low concentrations of taste-producing and odor-producing organics, J. AWWA., 78(11), pp.76-82
  9. Melin, E., Eikebrokk, B., Brugger, M. and Odegaard, H. (2002) Treatment of humic surface water at cold temperatures by ozonation and biofiltration, Wat. Sci. Tech.: Wat. Supply, 2(5-6), pp.451-457
  10. Meng, A.K. and Suffet, I.H. (1997) A procedure for correlation of chemical and sensory data in drinking water samples by principal component factor analysis, Environ. Sci. Technol., 31, pp.337-345 https://doi.org/10.1021/es950776d
  11. Metcalf and Eddy, Inc. (1991) Wastewater Engineering: Treatment, Disposal and Reuse, 3rd Edition, McGraw-Hill Inc., New York
  12. Moll. D.M., Summers, R.S., Fonseca, A.C. and Matheis, W. (1999) Impact of temperature on drinking water biofilter performance and microbial community structure, Environ. Sci. Technol., 33(14), pp.2377-2382 https://doi.org/10.1021/es9900757
  13. Nerenberg, R., Rittman, B.E. and Soucie, W.J. (2000) Ozone/biofiltration for removing 2-MIB and geosmin, J. AWWA., 92(12), pp.85-95
  14. Parsons, T.R., Maita, Y. and Lalli, C.M. (1984) A Manual of Chemical and Biological Methods for Seawater Analysis, Pergamon, New York
  15. Rittman, B.E., Gantzer, C.J. and Montiel, A. (1995) Biological treatment to control taste and odor compounds in drinking water treatment, In Advances in the Control of Tastes and Odors in Drinking Water, AWWARF, Denver, CO., USA
  16. Rosen, A.A., Mashni, C.I. and Safferman, R.S. (1970) Recent developments in the chemistry of odor in water: the cause of earthy/musty odor, Water Treat. Examin., 19, pp.106
  17. Suffet, I.H., Mallevialle, J. and Kawczynski, E. (1995) Advances in Taste-and Ordor Treatment and Control, AWWARF, Denver, CO., USA
  18. Urfer, D. (1998) Effects of Oxidants on Drinking Water Biofilters, Ph.D thesis, Dept. of Civil Engineering, University of Waterloo, Waterloo, ON, Canada
  19. Westerhoff, P., Summer R.S. and Kommineni S. (2005) Ozone-enhanced biofiltration for geosmin and MIB removal. AWWARF, Denver CO., USA
  20. 김영웅, 손희종, 유명호, 이춘식, 조인철, 김은호, 성낙창 (2000) 정수처리공정 중 침전지 부착조류 특성과 이취발생에 관한 연구, 대한환경공학회지, 22(5), pp.887-894
  21. 배상대, 손희종, 정철우 (2008) 활성탄과 생물여과 공정에서의 Chloral hydrate 제거 특성, 대한환경공학회지, 30(2), pp.218-224
  22. 손희종 (2001) 회전 드럼형 광촉매 산화장치를 이용한 비스페놀-A 제거, 한국화학공학회지, 39(4), pp.493-500
  23. 손희종, 박홍기, 이수애, 정은영, 정철우 (2005) 생물활성탄 공정에서 활성탄 재질에 따른 부착미생물 군집특성, 대한환경공학회지, 27(12), pp.1311-1320
  24. 이화자, 손희종, 노재순, 이상원, 지기원, 유평종, 강임석 (2006) 오존과 과산화수소를 이용한 이취미 물질 산화 제거, 대한환경공학회지, 28(12), pp.1323-1330
  25. 이화자 (2007) 수돗물의 냄새 유발물질 분석 및 처리, 부경대학교 환경공학과 박사논문
  26. 이화자, 손희종, 이철우, 배상대, 강임석 (2007) 활성탄 재질과 사용연수에 따른 geosmin과 2-MIB 흡착특성, 대한환경공학회지, 29(4), pp.404-411
  27. 長澤 (1990) 粒狀活性炭表層のおける微生物の動向, 第41回 日本水道硏究發表會 發表論文集, pp.1-3