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A Study on Remediation of Heavy Metal Contaminated Soil using a Soil Electrolysis Apparatus with Spiral Paddle

나선형패들이 장착된 토양전기분해장치를 이용한 중금속 오염토양 정화에 관한 연구

  • Lee, Jun-Hee (Department of Environmental Engineering, Dong-A University) ;
  • Choi, Young-Ik (Department of Environmental Engineering, Dong-A University) ;
  • Jung, Jin-Hee (Department of Environmental Engineering, Dong-A University)
  • Received : 2017.03.16
  • Accepted : 2017.05.24
  • Published : 2017.06.30

Abstract

This study aimed to remove organic matter and heavy metals that could affect the recycling of soils contaminated by heavy metals, by means of electrolysis, carried out simultaneously with the leaching of the soil. To ensure better experimental equipment, a soil electrolysis apparatus, equipped with spiral paddles, was used to agitate the heavy-metal-contaminated soil effectively. The heavy-metal-contaminated soil was electrolyzed by varying the voltage to 5 V(Condition 1), 15 V(Condition 2), and 20 V(Condition 3), under the optimal operating conditions of the electrolysis apparatus, as determined through previous studies. The results showed that the pH of the electrolyte solution and the heavy-metal-contaminated soil, after electrolysis, tended to decrease with an increase in voltage. The highest removal efficiencies of TOC and $COD_{Cr}$ were 18.8% and 29.1%, 38.8% and 4.2%, and 33.3% and 50.0%, under conditions 1, 2 and 3, respectively. Heavy metals such as Cd and As were not detected in this experiment. The removal efficiencies of Cu, Pb and Cr were 4.7%, 8.3% and 2.1%, respectively, under Condition 1, while they were 42.9%, 15.2% and 22.1%, respectively, under Condition 2, and 4.7%, 23.0%, and 24.9%, respectively, under Condition 3. These results suggest that varying the voltage with the soil electrolysis apparatus for removing contaminants for the recycling of heavy-metal-contaminated soil allows the selective removal of contaminants. Therefore, the results of this study can be valuable as basic data for future studies on soil remediation.

Keywords

References

  1. Bu, C. S., Lee, Y. D., 2001, Removal of organic and ammonia from aquaculture wastewater by electrolysis, Journal of Environmental Science International, 10(1), 77-79.
  2. Hur, J. H., Jeong, S. W., 2011, Effect of water -thoroughly-rinsing in the artificially metal-contaminated soil preparation on final soil metal concentrations, Korea Society of Environmental Engineers, 33(9), 670-676. https://doi.org/10.4491/KSEE.2011.33.9.670
  3. Jeon, J. W., Bae, B. H., Kim, Y. H., 2010, Applicability test of various stabilizers for heavy metals contaminated soil from smelter area, Korean Geotechnical Society, 11(11), 63-75.
  4. Raymond Chang, Kennet A. Goldsby, 2016, Eleventh edition chemistry, Science plus, 791.
  5. Seo, S. J., Na, S. J., Kim, J. H., Park, J. Y., 2014, The remediation characteristic of soil contaminated with heavy metal and Total Petroleum Hydrocarbon (TPH) by enhanced electrokinetic with fenton oxidation and soil flushing method, Korean Society of Civil Engineers, 34(3), 885-893. https://doi.org/10.12652/Ksce.2014.34.3.0885
  6. Song, H. C., Song, D. S., Cho, D. W., Park, S. W., Choi, S. H., Jeon, B. H., Lee, J. H., Park, J. H., 2009, Stabilization of heavy metals using Ca-citrate-phosphate solution: Effect of soil microorganisms, Korea Society of Environmental Engineers, 31(4), 241-248.
  7. Yang, H. K., 2015, Development of sewage sludge solubilization apparatus and process by using electrolysis, Seoul National University of Science and Technology.