Interface behavior of chalcopyrite during flotation from cyanide tailings

Xuemin Qiu , Hongying Yang , Guobao Chen , Linlin Tong , Zhenan Jin , Qin Zhang

International Journal of Minerals, Metallurgy, and Materials ›› 2022, Vol. 29 ›› Issue (3) : 439 -445.

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International Journal of Minerals, Metallurgy, and Materials ›› 2022, Vol. 29 ›› Issue (3) : 439 -445. DOI: 10.1007/s12613-020-2170-5
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Interface behavior of chalcopyrite during flotation from cyanide tailings

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Abstract

The interface characteristics of cyanide tailings are different from those of the raw ore. In this study, valuable elements could not be thoroughly recovered via the flotation of cyanide tailings from Shandong, China. The interface and floatability of these tailings were investigated by phase analysis and flotation tests. The chalcopyrite in the cyanide tailings was fine and had a porous surface. The floatability of 68% chalcopyrite was similar to that of galena in the presence of a collector. A layer of fine galena particles compactly wrapped the chalcopyrite. The chalcopyrite recovery sharply decreased as the nonpolar oil residue in cyanide tailings was extracted using alcohol; however, this removal had no effect on the galena. The remaining chalcopyrite in the flotation tailings was covered with an oxidation layer consisting of O, Fe, S, Pb, Cu, Zn, and Si.

Keywords

cyanide tailings / interface behavior / chalcopyrite / flotation / surface wrapped layer

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Xuemin Qiu, Hongying Yang, Guobao Chen, Linlin Tong, Zhenan Jin, Qin Zhang. Interface behavior of chalcopyrite during flotation from cyanide tailings. International Journal of Minerals, Metallurgy, and Materials, 2022, 29(3): 439-445 DOI:10.1007/s12613-020-2170-5

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References

[1]

Ritcey GM. Tailings management in gold plants. Hydrometallurgy, 2005, 78(1–2): 3.

[2]

Donato DB, Nichols O, Possingham H, Moore M, Ricci PF, Noller BN. A critical review of the effects of gold cyanide-bearing tailings solutions on wildlife. Environ. Int., 2007, 33(7): 974.

[3]

Griffiths SR, Smith GB, Donato DB, Gillespie CG. Factors influencing the risk of wildlife cyanide poisoning on a tailings storage facility in the Eastern Goldfields of Western Australia. Ecotoxicol. Environ. Saf., 2009, 72(5): 1579.

[4]

Hamberg R, Bark G, Maurice C, Alakangas L. Release of arsenic from cyanidation tailings. Miner. Eng., 2016, 93, 57.

[5]

H.Y. Li, H.L. Long, L.B. Zhang, S.H. Yin, S.W. Li, F. Zhu, and H.M. Xie, Effectiveness of microwave-assisted thermal treatment in the extraction of gold in cyanide tailings, J. Hazard. Mater., 384(2020), art. No. 121456.

[6]

Li HY, Ma AY, Srinivasakannan C, Zhang LB, Li SW, Yin SH. Investigation on the recovery of gold and silver from cyanide tailings using chlorination roasting process. J. Alloys Compd., 2018, 763, 241.

[7]

Lv CC, Ding J, Qian P, Li QC, Ye SF, Chen YF. Comprehensive recovery of metals from cyanidation tailing. Miner. Eng., 2015, 70, 141.

[8]

Yang XL, Huang X, Qiu TS. Recovery of zinc from cyanide tailings by flotation. Miner. Eng., 2015, 84, 100.

[9]

Zhang YL, Li HM, Yu XJ. Recovery of iron from cyanide tailings with reduction roasting—water leaching followed by magnetic separation. J. Hazard. Mater., 2012, 213–214, 167.

[10]

CC, Ding J, Fu GY, Liu Y, Lu YG, Qian P, Ye SF. Present situation and prospect of recovering valuable elements from cyanidation tailing. CIESC J., 2016, 67(4): 1079.

[11]

Qiu SC, Hu Z, Qiu XY. Research status of gold extraction process of roasting cyanide tailings. Precious Met., 2019, 40(3): 84.

[12]

Sun LG, Chang YC, Xu XH, Huang HH, Wang Y, Zhang L. The main technology status and development trend of harmless and resourceful utilization of cyanide tailings. China Resour. Compr. Util., 2017, 35(10): 59.

[13]

Wang J, Chen WL, Jiao ZL, Peng XQ. Research progress on recovering gold and silver from cyanide residues. Conserv. Util. Miner. Resour., 2014, 4, 54.

[14]

H. Liu, Y.M. Zhu, Y.W. Ma, Y.X. Han, and Y.J. Li, Study on flotation and recovery technology for pyrite and sphalerite in cyanidation tailings, Multipurpose Util. Miner. Resour., 2017, No. 2, p. 99.

[15]

Huang HH, Wang L, Wang Y, Li Y, Sun LG, Chang YC. Research on the process mineralogy of certain slag from gold extraction. Gold, 2016, 2, 64.

[16]

Qiu XM, Yang HY, Chen GB, Zhao SX. Interface characteristics of lead and copper minerals from ultra-fine cyanide tailings. J. Northeast. Univ. Nat. Sci., 2019, 1, 58.

[17]

Zhang Y, Jiang BN, Wang YH, Gong JC. Study on physical phase analysis of lead in cyanidation tailings. Gold, 2014, 10, 81.

[18]

Yao FS. Application of large tower mill in cyanide fine grinding of gold concentrate. Gold Sci. Technol., 2014, 22(3): 82.

[19]

Kyle JH, Breuer PL, Bunney KG, Pleysier R. Review of trace toxic elements (Pb, Cd, Hg, As, Sb, Bi, Se, Te) and their deportment in gold processing: Part II: Deportment in gold ore processing by cyanidation. Hydrometallurgy, 2012, 111–112, 10.

[20]

H. Wang, S.M. Wen, G. Han, L. Xu, and Q.C. Feng, Activation mechanism of lead ions in the flotation of sphalerite depressed with zinc sulfate, Miner. Eng., 146(2020), art. No. 106132.

[21]

W.J. Zhao, D.W. Liu, and Q.C. Feng, Enhancement of salicyl-hydroxamic acid adsorption by Pb(II) modified hemimorphite surfaces and its effect on floatability, Miner. Eng., 152(2020), art. No. 106373.

[22]

Forbes E. Shear, selective and temperature responsive flocculation: A comparison of fine particle flotation techniques. Int. J. Miner. Process., 2011, 99(1–4): 1.

[23]

Miettinen T, Ralston J, Fornasiero D. The limits of fine particle flotation. Miner. Eng., 2010, 23(5): 420.

[24]

Yu YX, Ma LQ, Cao ML, Liu Q. Slime coatings in froth flotation: A review. Miner. Eng., 2017, 114, 26.

[25]

Guo B, Peng YJ, Espinosa-Gomez R. Cyanide chemistry and its effect on mineral flotation. Miner. Eng., 2014, 66–68, 25.

[26]

Johnson CA. The fate of cyanide in leach wastes at gold mines: An environmental perspective. Appl. Geochem., 2015, 57, 194.

[27]

Kuyucak N, Akcil A. Cyanide and removal options from effluents in gold mining and metallurgical processes. Miner. Eng., 2013, 50–51, 13.

[28]

Ma YW, Han YX, Zhu YM, Li YJ, Liu H. Flotation behaviors and mechanisms of chalcopyrite and galena after cyanide treatment. Trans. Nonferrous Met. Soc. China, 2016, 26(12): 3245.

[29]

Bas AD, Koc E, Yazici EY, Deveci H. Treatment of copper-rich gold ore by cyanide leaching, ammonia pretreatment and ammoniacal cyanide leaching. Trans. Nonferrous Met. Soc. China, 2015, 25(2): 597.

[30]

Wilmot JC. The Chemistry of Cyanide in the Presence of Reduced Sulfur Sources, 1997, Lincoln, University of Nebraska—Lincoln, 143 [Dissertation]

[31]

Akdemir Ü. Shear flocculation of fine hematite particles and correlation between flocculation, flotation and contact angle. Powder Technol., 1997, 94(1): 1.

[32]

Wills BA, Finch JA. Wills’ Mineral Processing Technology: An Introduction to the Practical Aspects of Ore Treatment and Mineral Recovery, 2016, Oxford, Butterworth Heinemann, 66.

[33]

Qiu TS, Huang X, Yang XL. Recovery of copper from cyanidation tailing by flotation. JOM, 2016, 68(2): 548.

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