DOI QR코드

DOI QR Code

황화광물정광으로부터 Bi, As 제거를 위한 마이크로웨이브 용출 특성

Characteristics of Microwave Leaching for the Removal of Bi, As from the Sulfide Mineral Concentrate

  • 온현성 (조선대학교 에너지.자원공학과) ;
  • 톡토흐마 (조선대학교 에너지.자원공학과) ;
  • 박천영 (조선대학교 에너지.자원공학과)
  • On, Hyun-Sung (Department of Energy and Resource Engineering, Chosun University) ;
  • Togtokhmaa, B. (Department of Energy and Resource Engineering, Chosun University) ;
  • Park, Cheon-Young (Department of Energy and Resource Engineering, Chosun University)
  • 투고 : 2018.06.04
  • 심사 : 2018.09.29
  • 발행 : 2018.09.30

초록

본 연구 목적은 페널티원소가 포함된 정광을 질산용액으로 마이크로웨이브 용출하여 Bi와 As를 효과적으로 용출하고자 하였다. 정광시료에 대한 페널티원소와 유용금속들의 용출특성을 마이크로웨이브 용출시간, 질산농도 및 정광 첨가량에 대하여 조사하였다. 그 결과 페널티원소인 Bi와 As의 용출률은 마이크로웨이브 용출시간이 증가할수록, 질산농도가 증가할수록 그리고 정광 첨가량이 감소할수록 증가하였다. 정광과 광석광물을 마이크로웨이브 가열하자, Bi가 90% 이상 제거되었고, 황비철석은 자류철석-적철석으로 상변환 되었다. 고체-잔류물에 대하여 XRD분석한 결과, 단체 황과 anglesite가 나타났다. 단체 황과 anglesite의 XRD peak는 1분에서보다 12분에서, 0.5 M보다 4 M에서 그리고 5 g보다 30 g에서 intensity가 더 증가하였고 예리해졌다. 이와 같은 결과는 용출효율이 증가할수록 더 많은 단체 황과 anglesite가 생성되기 때문인 것으로 사료된다. 정광을 마이크로웨이브 가열하면 Bi와 As가 대기 중으로 손실되지만, 질산용액으로 마이크로웨이브 용출하면 Bi와 같은 유용금속이 용출되어 회수될 수 있음을 확인하였다.

The aim of this study was to leach penalty elements, such as Bi and As, effectively through microwave leaching of a gold concentrate sample containing penalty elements with nitric acid solution. For this purpose, the time effect of microwave leaching, nitric acid concentration effect, and sample addition effect in a microwave were examined. The experiment, demonstrated that the leaching rate of penalty elements increased as microwave leaching time and nitric acid concentration increased and concentration addition decreased. When a microwave heating experiment was carried out on the concentrate and ore minerals, Bi was removed by as much as 90%, and the phase of arsenopyrite was transformed in the order of arsenopyrite (FeAsS), pyrrhotite (FeS), and hematite ($Fe_2O_3$). When the X-ray diffraction (XRD) analysis was carried out with solid residue, elemental sulfur and anglesite were identified. The intensity of the XRD peaks of elemental sulfur and anglesite increased, and the peaks were sharper when the microwave leaching time was 12 min instead of 1 min, the nitric acid concentration was 4 M in rather than 0.5 M, and the concentration addition was 30 g rather than 5 g. This was probably because more elemental sulfur and anglesite were generated in the leaching solution as the leaching efficiency increased. Bi can be leached as valuable elements in the leaching solution through microwave leaching processes while they are released to the environment through a microwave heating processes.

키워드

참고문헌

  1. Al-Harahsheh, M., Kingman, S., and Bradshaw, S., 2006, Scale up possibilities for microwave leaching of chalcopyrite in ferric sulphate. International Journal of Mineral processing, 80, 198-204. https://doi.org/10.1016/j.minpro.2006.04.003
  2. Amankwah, R.K. and Pickles, C.A., 2009, Microwave roasting of a carbonaceous sulphidic gold concentrate. Minerals Engineering, 22, 1095-1101. https://doi.org/10.1016/j.mineng.2009.02.012
  3. Amankwah, R.K., and Ofori-Sarpong, G., 2011, Microwave heating of gold ores for enhanced grindability and cyanide amenability. Mineral Engineering, 24, 541-544. https://doi.org/10.1016/j.mineng.2010.12.002
  4. Bayca, S.U., 2013, Microwave radiation leaching of colemanite in sulfuric acid solutions. Separation and purification Technology, 105, 24-32. https://doi.org/10.1016/j.seppur.2012.11.014
  5. Chen, C.L., Lo, S.L., Kuan, W.H., and Hsieh, C.H., 2005, Stabilization of Cu in acid-extracted industrial sludge using a microwave process. Journal of Hazardous Materials, 123, 256-261. https://doi.org/10.1016/j.jhazmat.2005.04.014
  6. De Michelis, I., Olivieri, A., Ubaldini, S., Ferella, F., Beolchini, F., and Veglio, F., 2013, Roasting and chlorine leaching of gold-bearing refractory concentrate: experimental and process analysis. International Journal of Mining Science and Technology, 23, 709-715. https://doi.org/10.1016/j.ijmst.2013.08.015
  7. Fullston, D., Fornasiero, D., and Ralston, J., 1999, Oxidation of synthetic and natural samples of enargite and tennantite: 1 dissolution and zeta potential study. Langmuir, 15, 4524-4529 https://doi.org/10.1021/la981526o
  8. Gao, G., Li, D., Zhou, Y., Sun, X., and Sun, W., 2009, Kinetics of high-sulphur and high-arsenic refractory gold concentrate oxidation by dilute nitric acid under mild conditions. Minerals Engineering, 22, 111-115. https://doi.org/10.1016/j.mineng.2008.05.001
  9. Hu, N., Chen, W., Ding, D.X., Li, F., Dai, Z.R., Li, G.Y., and Wang, Y.D., 2017, Role of water contents on microwave roasting of gold bearing high arsenic sulphide concentrate. International Journal of Mineral Processing, 161, 72-77. https://doi.org/10.1016/j.minpro.2017.02.004
  10. Huang, J.H., and Rowson, N.A., 2002, Hydrometallurgical decomposition of pyrite and marcasite in a microwave field. Hydrometallurgy, 64, 169-179. https://doi.org/10.1016/S0304-386X(02)00041-5
  11. Jotanovic, A., memic, M., Suljagic, S., and Huremovic, J., 2012, Comparison of x-ray fluorescent analysis and cupellation method for determination of gold in gold jewellery alloy. Bulletin of the Chemists and Technologists of Bosnia and Herzegovina, 38, 13-18.
  12. Kim, E., Horckmans, L., Soppren, J., Vrancken, K.C., Quaghebeur, M., and Broos, K., 2017, Selective leaching of Pb, Cu, Ni and Zn from secondary lead smelting residues. Hydrometallurgy, 169, 372-381. https://doi.org/10.1016/j.hydromet.2017.02.027
  13. Kingman, S.W., Corfield, G.M., and Rowson, N.A., 1999, Effect of microwave radiation upon the mineralogy and magnetic processing of a massive Norwegian ilmenite ore. Magnetic and Electrical Separation, 9, 131-148. https://doi.org/10.1155/1999/57075
  14. Komnitsas, C. and Pooley, F.D., 1989, Mineralogical characteristics and treatment of refractory gold ores. Minerals Engineering, 2, 449-457. https://doi.org/10.1016/0892-6875(89)90080-0
  15. Kyle, J.H., Breuer, P.L., Bunney, K.G., Pleysier, R., and may, P.M., 2011, Review of trace toxic elements (Pb, Cd, Hg, As, Sb, Bi, Se, Te) and their deportment in gold processing. part I: mineralogy, aqueous chemistry and toxicity. Hydrometallurgy, 107, 91-100. https://doi.org/10.1016/j.hydromet.2011.01.010
  16. Lamble, K. J. and Hill, S. J., 1998, Microwave digestion procedures for environmental matrices. Analyst, 123, 103R-133R. https://doi.org/10.1039/a800776d
  17. Lane, D.L., Cook, N.J., Grano, S.R., and Ehring, K., 2016, Selective leaching of penalty elements from copper concentrates: a review. Minerals Engineering, 98, 110-121. https://doi.org/10.1016/j.mineng.2016.08.006
  18. Maycock, A.R., Nahas, W., and Watson, T.C., 1990, Review of the design and operation of roasters for refractory gold bearing materials, In; Gold '90: proceedings of the Gold '90 Symposium, Salt Lake City, Utah, February 26 to March 1, 1990, 389-396.
  19. Nan, X.Y., Cai, X., and Kong, J., 2014, Pretreatment process on refractory gold ores with As. ISIJ International, 54, 543-547. https://doi.org/10.2355/isijinternational.54.543
  20. Ohgushi, T., Komarneni, S., and Bhalla, A.S., 2001, Mechanism of microwave heating of zeolite A. Journal of Porous Materials, 8, 23-35. https://doi.org/10.1023/A:1026518200875
  21. Padilla, T. and Ruiz, M.C., 2015, Behavior of arsenic, antimony and bismuth at roasting temperatures, In; Battle, T.P., Downey, J.P., May, L.D., Davis, B., Neelameggham, N.R., Sanchez-Segado, S., and Pistorius, P., (eds), Drying, Roasting, and Calcining of Minerals, TMS (the Minerals, Metals & Materials Society). 312p.
  22. Pickles, C.A., 2009, Microwaves in extractive metallurgy: Part 1 Review of fundamentals. Minerals Engineering, 22, 1102-1111. https://doi.org/10.1016/j.mineng.2009.02.015
  23. Plackowski, C., Nguyen, A.V., and Bruckard, W.J., 2012, A critical review of surface properties and selective flotation of enargite in sulphide systems. Minerals Engineering, 30, 1-11. https://doi.org/10.1016/j.mineng.2012.01.014
  24. Senior, G.D., Guy, P.J., and bruckard, W.J., 2006, The selective flotation of enargite from other copper minerals-a single mineral study in relation to beneficiation of the Tampakan deposit in the Philippines. International Journal of Mineral processing, 81, 15-26. https://doi.org/10.1016/j.minpro.2006.06.001
  25. Smith, L.K. and Bruckard, W.J., 2007, The separation of arsenic from copper in a Northparkes copper-gold ore using controlled-potential flotation. International Journal of Mineral processing, 84, 15-24. https://doi.org/10.1016/j.minpro.2007.05.002
  26. Su, X.J., Ma, S.J., He, C.L., Liang, Y.S., and Chen, Y.Q., 2014, Direct microwave roasting of arsenic-bearing pyritic concentrates. Journal of Microwave Power and Electromagnetic Energy, 48, 81-88. https://doi.org/10.1080/08327823.2014.11689873
  27. Sung, Y.H., Brugger, J., Viobanu, C.L., Pring, A., Skinner, W., and Nugus, M., 2009, Invisible gold in arsenian pyrite and arsenopyrite from a multistage Archaean gold deposit: Sunrise Dam, eastern goldfields province, western Australia. Miner Deposita, 44, 765-791. https://doi.org/10.1007/s00126-009-0244-4
  28. Thomas, K.G. and Cole, A.P., 2005, Roasting developments-especially oxygenated roasting, In; Mike, D. (eds). Developments in Mineral processing, 15, 403-432.
  29. Veres, J., jakabsky, S., and Lovas, M., 2010, Comparison of conventional and microwave assisted leaching of zinc from the basic oxygen furnace dust. Minerallia Slovaca, 42, 369-374.
  30. Veres, J., Lovas, M., Jakabsky, S., Sepelak, V., and Hredzak, S., 2012, Characterization of blast furnace sludge and removal of zinc by microwave assisted extraction. Hydrometallurgy, 129-130, 67-73. https://doi.org/10.1016/j.hydromet.2012.09.008