期刊文献+

Inhibition of acid mine drainage and immobilization of heavy metals from copper flotation tailings using a marble cutting waste 被引量:7

Inhibition of acid mine drainage and immobilization of heavy metals from copper flotation tailings using a marble cutting waste
下载PDF
导出
摘要 Acid mine drainage (AMD) with high concentrations of sulfates and metals is generated by the oxidation of sulfide beating wastes. CaCO3-rich marble cutting waste is a residual material produced by the cutting and polishing of marble stone. In this study, the feasibility of using the marble cutting waste as an acid-neutralizing agent to inhibit AMD and immobilize heavy metals from copper flotation tailings (sul- fide-beating wastes) was investigated. Continuous-stirring shake-flask tests were conducted for 40 d, and the pH value, sulfate content, and dissolved metal content of the leachate were analyzed every 10 d to determine the effectiveness of the marble cutting waste as an acid neu- tralizer. For comparison, CaCO3 was also used as a neutralizing agent. The average pH value of the leachate was 2.1 at the beginning of the experiment (t = 0). In the experiment employing the marble cutting waste, the pH value of the leachate changed from 6.5 to 7.8, and the sul- fate and iron concentrations decreased from 4558 to 838 mg/L and from 536 to 0.01 mg/L, respectively, after 40 d. The marble cutting waste also removed more than 80wt% of heavy metals (Cd, Cr, Cu, Ni, Pb, and Zn) from AMD generated by copper flotation tailings. Acid mine drainage (AMD) with high concentrations of sulfates and metals is generated by the oxidation of sulfide beating wastes. CaCO3-rich marble cutting waste is a residual material produced by the cutting and polishing of marble stone. In this study, the feasibility of using the marble cutting waste as an acid-neutralizing agent to inhibit AMD and immobilize heavy metals from copper flotation tailings (sul- fide-beating wastes) was investigated. Continuous-stirring shake-flask tests were conducted for 40 d, and the pH value, sulfate content, and dissolved metal content of the leachate were analyzed every 10 d to determine the effectiveness of the marble cutting waste as an acid neu- tralizer. For comparison, CaCO3 was also used as a neutralizing agent. The average pH value of the leachate was 2.1 at the beginning of the experiment (t = 0). In the experiment employing the marble cutting waste, the pH value of the leachate changed from 6.5 to 7.8, and the sul- fate and iron concentrations decreased from 4558 to 838 mg/L and from 536 to 0.01 mg/L, respectively, after 40 d. The marble cutting waste also removed more than 80wt% of heavy metals (Cd, Cr, Cu, Ni, Pb, and Zn) from AMD generated by copper flotation tailings.
作者 Gulsen Tozsin
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2016年第1期1-6,共6页 矿物冶金与材料学报(英文版)
关键词 acid mine drainage heavy metals copper ore treatment TAILINGS MARBLE IMMOBILIZATION acid mine drainage heavy metals copper ore treatment tailings marble immobilization
  • 相关文献

参考文献1

二级参考文献25

  • 1R.Lefebvre,D.Hockley,J.Smolensky,and P.G(c)inas,Multiphase transfer processes in waste rock piles producing acid mine drainage:1.Conceptual model and system characterization,J.Contaim.Hydrol.,5.
  • 2A.Sáinz,J.A.Grande,M.L.De La Torre,and D.S.Rodas,Characterisation of sequential leachate discharges of mining waste rock dumps in the Tinto and Odiel rivers,J.Environ.Manage.,64(2002),No.4,p.3.
  • 3J.W.Molson,O.Fala,M.Aubertin,B.Bussière,Numerical simulations of pyrite oxidation and acid mine drainage in unsaturated waste rock piles,J.Contam.Hydrol.,78(2005),No.4,p.343.
  • 4J.Poisson,M.Chouteau,M.Aubertin,D.Campos,Geophysical experiments to image the shallow internal structure and the moisture distribution of a mine waste rock pile,J.Appl.Geophys.,67(2009),No.2,p.
  • 5H.R.Watling,The bioleaching of sulphide minerals with emphasis on copper sulphides-A review,Hydrometallurgy,84(2006),No.1-2,p.81.
  • 6C.L.Brierley,Bacterial succession in bioheap leaching,Hydrometallurgy,59(2001),No.2-3,p.249.
  • 7N.Pradhan,K.C.Nathsarma,R.K.Srinivasa,L.B.Sukla,and B.K.Mishra,Heap bioleaching of chalcopyrite:A review,Miner.Eng.,21(2008),No.5,p.355.
  • 8Y.Rodríguez,A.Ballester,M.L.Blázquez,F.González,and J.A.Munoz,Study of bacterial attachment during the bioleaching of pyrite,chalcopyrite,and sphalerite,Geomicrobiol.J.,20(2003),No.2,p.131.
  • 9J.Petersen and D.G.Dixon,Thermophilic heap leaching of a chalcopyrite concentrate,Miner.Eng.,15(2002),No.11,p.777.
  • 10T.A.Fowler,P.R.Holmes,and F.K.Crundwell,On the kinetics and mechanism of the dissolution of pyrite in the presence of Thiobacillus ferrooxidans,Hydrometallurgy,59(2001),No.2-3,p.257.

共引文献1

同被引文献81

引证文献7

二级引证文献37

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部