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The Treatment Properties of Heavy Metals in Acid Mine Drainage with Micro-bubble and UV/H2O2 Oxidation Process

마이크로버블과 자외선/과산화수소 산화공정을 이용한 광산배수의 중금속 처리 특성

  • Jung, Yong-Jun (Department of Environmental Engineering, Catholic University of Pusan) ;
  • Jung, Jae-Ouk (Department of Environmental Engineering, Catholic University of Pusan)
  • 정용준 (부산가톨릭대학교 환경공학과) ;
  • 정재억 (부산가톨릭대학교 환경공학과)
  • Received : 2016.11.16
  • Accepted : 2016.12.06
  • Published : 2017.03.31

Abstract

Aeration with low energy micro-bubble generation and $UV/H_2O_2$ processes was introduced to verify the possibility of oxidation treatment for acid mine drainage. During 10 hours of aeration with micro-bubbles, Fe and As concentrations were decreased to 18.1 and 61.8%, respectively, while Cu, Cd, Al were kept at influent concentrations. Other heavy metals such as Mn, Cr, Pb, Zn, and Ni concentrations fluctuated due to the repetition of oxidation and release. Twenty days of aeration indicated the oxidation possibility for Cu, Cd, and Al. With the employment of $UV/H_2O_2$ processes, more than 77% of Cu and Fe removed, whereas slightly more than 30% of Cd and Al removed.

Keywords

References

  1. Choi, S. W., Jang, Y. D., Kim, Y. H., Kim, J. J., 2010, Studies on purification of mine drainage with NaOCl and $H_2O_2$, Econ. Environ. Geol., 43(1), 21-31.
  2. Duran, A., Monteagudo, J. M., Sanmartin, I., Garcia-Pena, F., Coca, P., 2009, Treatment of IGCC power station effluents by physico-chemical and advanced oxidation processes, Journal of Environmental Management, 90(3), 1370-1376. https://doi.org/10.1016/j.jenvman.2008.08.002
  3. Ji, M. K., Yoon, H. S., Ji, E. D., Lee, W. R., Park, Y. T., Yang, J. S., Jeon, B. H., Shim, Y. S., Kang, M. H., Choi, J. Y., 2010, Development of control technology for acid mine drainage by coating on the surface of pyrite using chemicals, J. Soil. Ground. Env., 15(4), 46-52.
  4. Jo, Y. D., Kim, H. S., Ahn, J. W., 2007, Precipitation characteristics of heavy metal ions in coal mine drainage, J. Miner. Soc. Kor., 20(2), 125-134.
  5. Jung, J. O., Jung, Y. J., 2016, Industrial wastewater treatment containing high concentration of ammonia with low energy micro-bubble reactor, J. Wet. Res., 18(3), 286-291. https://doi.org/10.17663/JWR.2016.18.3.286
  6. Kim, T. K., Moon, B. R., Kim, T., Kim, M. K., Zoh, K. D., 2016, Degradation mechanisms of geosmin and 2-MIB during UV photolysis and UV/chlorine reactions, Chemosphere, 162, 157-164. https://doi.org/10.1016/j.chemosphere.2016.07.079
  7. Kim, Y. J., Jung, J. O., Jung, Y. J., 2015, Complex mal-odor treatment of foodwaste with micro-bubble generated from enhanced wet scrubber, J. Env. Sci. Int., 24(1), 73-79. https://doi.org/10.5322/JESI.2015.24.1.73
  8. Oh, J. I., Park, S. W., 2005, Settling characteristics of AMD (Acid Mine Drainage) sludges produced by difference alkali-neutralizer use, Kor. Soc. Civ. Eng., 25(4B), 309-315.
  9. Park, Y. G., Park, J. S., Hong, S. J., 2005, Neutralization treatment of acid mine drainage using $Ca(OH)_2$, J. Kor. Ind. Eng. Chem., 16(3), 391-396.
  10. Seo, S. H., Ahn, K. H., Lee, J. K., Kim, G. J., Chu, K. H., Ra, Y. H., Ko, K. B., 2010, Removal of dissolved heavy metals in abandoned mine drainage by ozone oxidation system, J. Kor. Soc. Wat. Qual., 26(5), 723-731.
  11. Sung, I. J., Pak, S. I., Yang, J. K., Bae, S. D., Jin, H. J., Choi, S. I., 2014, Field-scale treatment of acid mine drainage by hybrid electrolysis process, J. Soil. Groundw. Environ., 19(3), 142-152. https://doi.org/10.7857/JSGE.2014.19.3.142