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The Removal Efficiency of Microcystis spp. and Its Ecotoxicity Using Clay

황토의 Microcystis spp. 제거효율 및 생태독성평가

  • Park, Hye-Jin (Watershed Ecology Research Team, Water Environment Research Department, National Institute of Environmental Research) ;
  • Kim, Sang-Hoon (Watershed Ecology Research Team, Water Environment Research Department, National Institute of Environmental Research) ;
  • Park, Woo-Sang (Watershed Ecology Research Team, Water Environment Research Department, National Institute of Environmental Research) ;
  • Lee, Jae-Yoon (Watershed Ecology Research Team, Water Environment Research Department, National Institute of Environmental Research) ;
  • Lee, Jae-An (Watershed Ecology Research Team, Water Environment Research Department, National Institute of Environmental Research)
  • 박혜진 (국립환경과학원 물환경연구부 유역생태연구팀) ;
  • 김상훈 (국립환경과학원 물환경연구부 유역생태연구팀) ;
  • 박우상 (국립환경과학원 물환경연구부 유역생태연구팀) ;
  • 이재윤 (국립환경과학원 물환경연구부 유역생태연구팀) ;
  • 이재안 (국립환경과학원 물환경연구부 유역생태연구팀)
  • Received : 2014.01.22
  • Accepted : 2014.04.01
  • Published : 2014.05.30

Abstract

Four clays (both natural and commercial types) mainly used in Korea were tested for removal efficiency of Microcystis spp. and ecotoxicity on Daphnia magna and Vibrio fischeri. Four clays (clay A~D) were composed of 91.9~100% of sand (0.02~0.2 mm in particle size). Clay D consisted of lager particles than other clays. Major elements of the four clays were $SiO_2$ (45.3~62.8%), $Al_2O_3$ (18.5~29.7%) and $Fe_2O_3$ (5.4~7.9%). They contained kaolinite (clay mineral), quartz, muscovite, and so on. Clay C and D contained montmorillonite, one of the clay minerals improving clay-cell aggregation. For clay A, B and C, removal efficiency of Microcystis spp. was over 60% at 2 g/L. It reached about 100% at over 5 g/L. For clay D, it was over 60% and 95~100% at 5 g/L and 20 g/L respectively. After adding clays, pH decreased. The greatest drop of pH appeared at clay C. Except for addition of 100 g/L clay C, ecotoxicity on D. magna and V. fischeri didn't appeared at all dose of clays.

Keywords

References

  1. Ahn, C. Y., Park, M. H., Joung, S. H., Kim, H. S., Jang, K. Y., and Oh, H. M. (2003).Growth Inhibition of Cyanobacteria by Ultrasonic Radiation: Laboratory and Enclosure Studies, Environmental Science and Technology, 37(13), pp. 3031-3037. https://doi.org/10.1021/es034048z
  2. Ahn, S. M. (2010). The Assessment of Blue-Green Algae Microcystis Elimination Effect and Risk of Loess, Coagulants and Algicides, Master's Thesis, Daegu University, Gyeongbuk, Korea. [Korean Literature]
  3. Avnimelech, Y., Troeger, B. W., and Reed, L. W. (1982). Mutual Flocculation of Algae and Clay: Evidence and Implication, Science, 216(4541), pp. 63-65. https://doi.org/10.1126/science.216.4541.63
  4. Cho, H. G., Park, S. J., and Choo, C. O. (2004). The Copper Absorption onto Hwangto Suspension from Pankok-ri, Kosung-gun, Journal of the Mineralogical Society of Korea, 17(3), pp. 209-220. [Korean Literature]
  5. Chon, C. M., Park, J. K., Kim, J. G., and Lee, Y. S. (2010). Relationship between Physicochemical Properties, Heavy Metal Contents and Magnetic Susceptibility of Soils, Journal of the Mineralogical Society of Korea, 23(4), pp. 281-295. [Korean Literature]
  6. Clesceri, L. S., Greenberg, A. E., and Eaton, A. D. (1999). Standard Methods for the Examination of Water and Wastewater, American Public Health Association.
  7. Cranford, P. J. and Gordon, D. C. Jr. (1992). The Influence of Dilute Clay Suspensions on Sea Scallop (Placopecten magellanicus) Feeding Activity and Tissue Growth, Netherlands Journal of Sea Research, 30, pp. 107-120. https://doi.org/10.1016/0077-7579(92)90050-O
  8. Cranford, P. J., Gordon, D. C. Jr., Armsworthy, S. L., and Tremblay, G. H. (1999). Chronic Toxicity and Physical Disturbance Effects of Water- and Oil-Based Drilling Fluids and Some Major Constituents on Adult Sea Scallops (Placopecten magellanicus), Marine Environmental Research, 48(3), pp. 225-256. https://doi.org/10.1016/S0141-1136(99)00043-4
  9. Dzombak, D. A. and Morel, F. M. M. (1987). Adsorption of Inorganic Pollutants in Aquatic Systems, Journal of Hydraulic Engineering, 116, pp. 430-475.
  10. Gastrich, M. D., Leigh-Bell, J. A., Gobler, C. J., Anderson, O. R., Wilhelm, S. W., and Bryan, M. (2004). Viruses as Potential Regulators of Regional Brown Tide Blooms Caused by the Alga, Aureococcus anophagefferens, Estuaries, 27(1), pp. 112-119. https://doi.org/10.1007/BF02803565
  11. Hagstrom, J. A. and Graneli, E. (2005). Removal of Prymnesium parvum (Haptophyceae) Cells under Different Nutrient Conditions by Clay, Harmful Algae, 4(2), pp. 249-260. https://doi.org/10.1016/j.hal.2004.03.004
  12. Han, M. Y. and Kim, W. (2001). A Theoretical Consideration of Algae Removal with Clays, Microchemical Journal, 68(2-3), pp. 157-161. https://doi.org/10.1016/S0026-265X(00)00142-9
  13. Hogg, R., Healy, T. W., and Fuerstenau, D. W. (1966). Mutual Coagulation of Colloidal Dispersions, Transactions of the Faraday Society, 62, pp. 1638-1651. https://doi.org/10.1039/tf9666201638
  14. Holz, J. C. and Hoagland, K. D. (1999). Effects of Phosphorus Reduction on Water Quality: Comparison of Alum-Treated and Untreated Portions of a Hypereutrophic Lake, Journal of Lake and Reservoir Management,15(1), pp. 70-82. https://doi.org/10.1080/07438149909353953
  15. Huisman, J. M., Matthijs, H. C. P., and Visser, P. M. (2005). Harmful Cyanobacteria, Aquatic Ecology Series 3, Dordrecht, the Netherlands: Springer.
  16. Hwang, J. Y., Jang, M. I., Kim, J. S., Cho, W. M., Ahn, B. S., and Kang, S. W. (2000). Mineralogy and Chemical Composition of the Residual Soils(Hwangto) from South Korea, Journal of the Mineralogical Society of Korea, 13, pp. 147-163. [Korean Literature]
  17. James, W. F., Barko, J. W., and Taylor, W. D. (1991). Effects of Alum Treatment on Phosphorus Dynamics in a North- Temperate Reservoir, Hydrobiologia, 215(3), pp. 231-241. https://doi.org/10.1007/BF00764858
  18. Jeong, E. D., Kim, H. S., Park, K. W., and Paek, U. H. (1999). A Study on Physical Properties and Adsorption Characteristics of Heavy Metal Ions of Loess, Journal of the Korean Environmental Sciences Society, 8(4), 491-496. [Korean Literature]
  19. Jheong, W. H. (2001). Characteristics of Occurrence and Control of Cyanobacteria and Phytoplankton in Lake Paldang, Ph. D. Dissertation, University of Dankook, Korea. [Korean Literature]
  20. Jung, K. J., Kim, M. K., and Hong, T. K. (2003). Separation and Determination of Major Component(Si, Fe, Al, Mg and Ca) in Yellow Ochre, Journal of the Korean Society for Environmental Analysis, 6, pp. 153-155. [Korean Literature]
  21. Kim, S. J. (1998). Settling Characteristics of Natural Loess Particles in Seawater for Removal of Red Tides, Journal of Institute of Marine Industry, 10, pp. 51-55. [Korean Literature]
  22. Kim, S. J. (2000). Removal of Red Tide Organisms 2. Flocculation of Red Tide Organisms by Using Loess, Journal of Korean Fisheries Society, 33(5), pp. 455-462. [Korean Literature]
  23. Korea Environment Institute (KEI). (2010). Analysis and Management of Algal Bloom in the Nakdong River, Korea Environment Institute, pp. 45-50. [Korean Literature]
  24. Korea Maritime Institute (KMI). (2004). Study on the Effect of Clay for the Red Tide and Improvement Plan, Korea Maritime Institute, pp. 25-66. [Korean Literature]
  25. Lim, B. J., Kim, S. H., and Jun, S. O. (2002). Application of Various Plants as an Inhibitor of Algal Growth: Studies in Barge Enclosure and Artificially Eutrophicated Pond, Korean Journal of Limnology, 35(2), pp. 123-132. [Korean Literature]
  26. Maruyama, T., Yamada, R., Usui, K., Suzuki, H., and Yoshida, T. (1987). The Studies on Removal of Red Tide Plankton - II. Removal of Marine Red Tide Plankton with Acid-Treated Clay, Nippon Suisan Gakkaishi, 53(10), pp. 1811-1819. [Japanese Literature] https://doi.org/10.2331/suisan.53.1811
  27. Michaud, J. P. (1991). A Citizen's Guide to Understanding and Monitoring Lake and Streams, Washington State Department of Ecology, Publications Office, Olympia, WA, USA, 360, pp. 407-472.
  28. Mitra, A. and Flynn, K. J. (2006). Promotion of Harmful Algal Blooms by Zooplankton Predatory Activity, Biology Letters, 2(2), pp. 194-197. https://doi.org/10.1098/rsbl.2006.0447
  29. Na, G. H., Choi, W. J., and Chun, Y. Y. (1996). A Study on Red Tide Control with Loess Suspension, Journal of Aquaculture, 9(3), pp. 239-245. [Korean Literature]
  30. Na, G. H., Nam, J. B., Park, K. D., and Lee, J. A. (1998). Experimental Elimination of Blue-Green Algae Microcystis sp. by Loess Suspension in Column Test, Journal of Korean Society on Water Environment, 14(4), pp. 399-404. [Korean Literature]
  31. Nagasaki, K., Tarutani, K., and Yamaguchi, M. (1999). Growth Characteristics of Heterosigma akashiwo Virus and Its Possible Use as a Microbiological Agent for Red Tide Control, Applied and Environmental Microbiology, 65(3), pp. 898-902.
  32. Nakano, K., Lee, T. J., and Matsumura, M. (2001). In Situ Algal Bloom Control by the Interaction of Ultrasonic Radiation and Jet Circulation to Flushing, Environmental Science and Technology, 35, pp. 4941-4946. https://doi.org/10.1021/es010711c
  33. Paerl, H. W. and Fulton, R. S. (2006). Ecology of Harmful Cyanobacteria. In Ecology of Harmful Marine Algae, Graneli, E. and J. Turner (eds), Berlin, Germany: Springer-Verlag, pp. 95-107.
  34. Paerl, H. W. and Huisman, J. (2009). Climate Change: a Catalyst for Global Expansion of Harmful Cyanobacterial Blooms, Environmental Microbiology Reports, 1(1), pp. 27-37. https://doi.org/10.1111/j.1758-2229.2008.00004.x
  35. Pan, G., Zhang, M. M., Chen, H., Zou, H., and Yan, H. (2006). Removal of Cyanobacterial Blooms in Taihu Lake Using Local Soils. I. Equilibrium and Kinetic Screening on the Flocculation of Microcystis aeruginosa Using Commercially Available Clays and Minerals, Environmental Pollution, 141(2), pp. 195-200. https://doi.org/10.1016/j.envpol.2005.08.041
  36. Park, C. H. and Lee, B. H. (2006). Effects of Loess Application in Coastal Benthic Ecosystem, Journal of the Environmental Sciences, 15(11), pp. 1035-1043. [Korean Literature] https://doi.org/10.5322/JES.2006.15.11.1035
  37. Park, C. H. and Lee, B. H. (2007). Additive Materials to Reduce the Amount of Loess Being Applied for Red Tide Removal on Coastal Water, Journal of the Environmental Sciences, 16(6), pp. 745-750. [Korean Literature] https://doi.org/10.5322/JES.2007.16.6.745
  38. Park, H. J., Kwon, O. B., and Ahn, T. S. (2000). Water Quality Improvement by Artificial Floating Island, Journal of Korean Environmental Restoration Technology, 4, pp. 90-97. [Korean Literature]
  39. Rounsefell, G. A. and Evans, J. E. (1958). Large-Scale Experimental Test of Copper Sulfate as a Control for the Florida Red Tide, U.S. Fish and Wildlife Service, special science report 270, pp. 57.
  40. Scheffer, M. (1998). Ecology of Shallow Lakes, Chapman and Hall, London, UK.
  41. Sengco, M. R. (1994). The Aggregation of Clay Minerals and Marine Microalgal Cells: Physicochemical Theory and Implications for Controlling Harmful Algal, Ph. D. Dissertation, B. S., Southampton College, Long Island University.
  42. Sengco, M. R. and Anderson, D. M. (2004). Controlling Harmful Algal Blooms through Clay Flocculation, Journal of Eukaryotic Microbiology, 51(2), pp. 169-172. https://doi.org/10.1111/j.1550-7408.2004.tb00541.x
  43. Sengco, M. R., Hagstrom, J. A., Graneli, E., and Anderson, D. M. (2005). Removal of Prymnesium parvum (Haptophyceae) and Its Toxins Using Clay Minerals, Harmful algae, 4(2), pp. 261-274. https://doi.org/10.1016/j.hal.2004.05.001
  44. Sengco, M. R., Li, A. S., Tugend, K., Kulis, D., and Anderson, D. M. (2001). Removal of Red- and Brown-Tide Cells Using Clay Flocculation. I. Laboratory Culture Experiments with Gymnodinium breve and Aureococcus anophagefferens, Marine Ecology Progress Series, 210(41), pp. 41-53. https://doi.org/10.3354/meps210041
  45. Shirota, A. (1989). Red Tide Problem and Countermeasures (1), International Journal of Aquaculture and Fish Technology, 1, pp. 25-38.
  46. Vernon, L. and Snoeyink, D. J. (1980). Water Chemistry, John Wiley & Sons, pp. 264-271.
  47. Verspagen, J. M. H., Visser, P. M., and Huisman, J. (2006). Aggregation with Clay Causes Sedimentation of the Buoyant Cyanobacteria Microcystis spp., Aquatic Microbial Ecology, 44, pp. 165-174. https://doi.org/10.3354/ame044165
  48. Welch, E. B. and Cooke, G. D. (1995). Effectiveness and Longevity of Alum Treatments in Lakes, Water Resources Series Technical Report No. 145, University of Washington, Seattle, WA.
  49. Yoon, S. J., Bae, H. M., Huh, S., and Lee, P. Y. (1998). Removal Effect of Red Tide by Particle Size of Clay, Korean Fisheries Society Congress, pp. 393-394.
  50. Yu, Z. M., Zou, J. Z., and Ma, X. N. (1994a). Application of Clay to Removal of Red Tide Organism. I. Coagulation of Red Tide Organism with Clays, Chinese Journal of Oceanology & Limnology, 12(3), pp. 193-200. https://doi.org/10.1007/BF02845163
  51. Yu, Z. M., Zou, J. Z., and Ma, X. N. (1994b). Application of Clay to Removal of Red Tide Organism. II. Coagulation of Different Species of Red Tide Organism with Montmorillonite and Effect of Clay Pretreatment, Chinese Journal of Oceanology & Limnology, 12(4), pp. 316-324. https://doi.org/10.1007/BF02850491
  52. Yu, Z. M., Zou, J. Z., and Ma, X. N. (1995). Application of Clay to Removal of Red Tide Organism. III. The Coagulation of Kaolin on Red Tide Organism, Chinese Journal of Oceanology & Limnology, 13(1), pp. 62-70. https://doi.org/10.1007/BF02845350
  53. Yun, J. S., Kim, S. H., and Yoon, C. H. (2003). Red-Tide Removal by Loess Spreading, Journal of Korean Society of Environmental Engineers, 25(3), pp. 358-363. [Korean Literature]