Effect of dissolved-oxygen on the flotation behavior of pyrite at high altitude area

Yan Miao, Guangke Ye, Guofan Zhang

International Journal of Minerals, Metallurgy, and Materials ›› 2024, Vol. 31 ›› Issue (10) : 2148-2158. DOI: 10.1007/s12613-023-2784-5
Research Article

Effect of dissolved-oxygen on the flotation behavior of pyrite at high altitude area

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Abstract

With the continuous development of mineral resources to high altitude areas, the study of sulfide ore flotation in unconventional systems has been emphasized. There is a consensus that moderate oxidation of sulfide ore is beneficial to flotation, but the specific suitable dissolved oxygen value is inconclusive, and there are few studies on sulfide ore flotation under low dissolved oxygen environment at high altitude. In this paper, we designed and assembled an atmosphere simulation flotation equipment to simulate the flotation of pyrite at high altitude by controlling the partial pressure of N2/O2 and dissolved oxygen under atmospheric conditions. X-ray photoelectron spectroscopy (XPS), atomic force microscope (AFM), Fourier transform infrared spectrometer (FT-IR), UV-vis spectrophotometer, zeta potential, and contact angle measurements were used to reveal the effects of surface oxidation and agent adsorption on pyrite at high altitude (4600 m dissolved oxygen (DO) = 4.0 mg/L). The results of pure mineral flotation indicated that the high altitude and low dissolved oxygen environment is favorable for pyrite flotation. Contact angle measurements and XPS analysis showed that the high altitude atmosphere slows down the oxidation of pyrite surface, facilitates S n 2−/S0 production and enhances surface hydrophobicity. Electrochemical calculations and zeta potential analysis showed that the influence of atmosphere on the form of pyrite adsorption is small, and the different atmospheric conditions are consistent with dixanthogen electrochemical adsorption, with lower Zeta potential under high altitude atmosphere and significant potential shift after sodium isobutyl xanthate (SIBX) adsorption. The results of FT-IR, UV-vis, and AFM analysis showed that SIBX adsorbed more on the surface of pyrite under high altitude atmosphere and adsorbed on the surface in a mesh structure composed of column/block. The results of the experimental study revealed the reasons for the easy flotation of sulfide ores at high altitude with less collector dosage, and confirmed that the combined DO–pH regulation is beneficial to achieve more efficient flotation of pyrite.

Keywords

high altitude / dissolved-oxygen / pyrite / flotation / oxidation

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Yan Miao, Guangke Ye, Guofan Zhang. Effect of dissolved-oxygen on the flotation behavior of pyrite at high altitude area. International Journal of Minerals, Metallurgy, and Materials, 2024, 31(10): 2148‒2158 https://doi.org/10.1007/s12613-023-2784-5

References

[[1]]
S.C. Lu, Advances in flotation theory for sulphide ores, Metallic Ore Dressing Abroad, (1974), No. 6, p. 30.
[[2]]
Arbiter N, Harris CC, Yap RF. The air flow number in flotation machine scale-up. Int. J. Miner. Process., 1976, 3(3): 257,
CrossRef Google scholar
[[3]]
Niu XP. . Correlation of Surface Oxidation of Galena, Chalcopyrite and Pyrite with Their Floatability, 2019 Beijing University of Chinese Academy of Sciences 70
[[4]]
H.P. Zhao, X.P. Niu, B.X. Dong, X.B. Jia, and R.M. Ruan, Investigation on the correlation between ferrous ion and the float-ability of pyrite with different oxidation degrees, Miner. Eng., 184(2022), art. No. 107636.
[[5]]
Hirajima T, Miki H, Suyantara GPW, et al.. Selective flotation of chalcopyrite and molybdenite with H2O2 oxidation. Miner. Eng., 2017, 100: 83,
CrossRef Google scholar
[[6]]
Mazumdar A, Goldberg T, Strauss H. Abiotic oxidation of pyrite by Fe(III) in acidic media and its implications for sulfur isotope measurements of lattice-bound sulfate in sediments. Chem. Geol., 2008, 253(1–2): 30,
CrossRef Google scholar
[[7]]
Mycroft JR, Nesbitt HW, Pratt AR. X-ray photoelectron and Auger electron spectroscopy of air-oxidized pyrrhotite: Distribution of oxidized species with depth. Geochim. Cosmochim. Acta, 1995, 59(4): 721,
CrossRef Google scholar
[[8]]
Y.C. Liu, Y.Q. Li, J.H. Chen, D. Kang, and X. Yang, Influence of sulfur vacancy on pyrite oxidization by water and oxygen molecules, Colloids Surf. A, 634(2022), art. No. 127954.
[[9]]
Monte MBM, Lins FF, Oliveira JF. Selective flotation of gold from pyrite under oxidizing conditions. Int. J. Miner. Process., 1997, 51(1–4): 255,
CrossRef Google scholar
[[10]]
Yin WZ, Xue JW, Li D, Sun QY, Yao J, Huang S. Flotation of heavily oxidized pyrite in the presence of fine digenite particles. Miner. Eng., 2018, 115: 142,
CrossRef Google scholar
[[11]]
Bulatovic SM. . Handbook of Flotation Reagents, 2007 Amsterdam Elsevier 235,
CrossRef Google scholar
[[12]]
Martin CJ, Rao SR, Finch JA, Leroux M. Complex sulphide ore processing with pyrite flotation by nitrogen. Int. J. Miner. Process., 1989, 26(1–2): 95,
CrossRef Google scholar
[[13]]
Aghazadeh S, Mousavinezhad SK, Gharabaghi M. Chemical and colloidal aspects of collectorless flotation behavior of sulfide and non-sulfide minerals. Adv. Colloid Interface Sci., 2015, 225: 203,
CrossRef Pubmed Google scholar
[[14]]
Qin WQ, Wang XJ, Ma LY, et al.. Electrochemical characteristics and collectorless flotation behavior of galena: With and without the presence of pyrite. Miner. Eng., 2015, 74: 99,
CrossRef Google scholar
[[15]]
W.J. Zhang, X. Jin, Z.T. Feng, et al., Collectorless flotation separation of molybdenite from complex sulfide minerals employing a bi-carbonyl depressant, Sep. Purif. Technol., 322(2023), art. No. 124207.
[[16]]
Clark DW, Newell AJH, Chilman GF, Capps PG. Improving flotation recovery of copper sulphides by nitrogen gas and sulphidisation conditioning. Miner. Eng., 2000, 13(12): 1197,
CrossRef Google scholar
[[17]]
Wiencke B. A proposed new model for the prediction of latitude-dependent atmospheric pressures at altitude. Sci. Technol. Built Environ., 2021, 27(9): 1221,
CrossRef Google scholar
[[18]]
R.M. Rosenberg and W.L. Peticolas, Henry’s law: A retrospective, J. Chem. Educ., 81(2004), No. 11, art. No. 1647.
[[19]]
Sander R. Compilation of Henry’s law constants (version 4.0) for water as solvent. Atmos. Chem. Phys., 2015, 15(8): 4399,
CrossRef Google scholar
[[20]]
K. Jiang, Y.X. Han, J. Liu, Y. Wang, W.C. Ge, and D.J. Zhang, Experimental and theoretical study of the effect of pH level on the surface properties and floatability of pyrite, Appl. Surf. Sci., 615(2023), art. No. 156350.
[[21]]
Y.F. Mu, Y.P. Cheng, and Y.J. Peng, The interaction of grinding media and collector in pyrite flotation at alkaline pH, Miner. Eng., 152(2020), art. No. 106344.
[[22]]
Nirmalkar N, Pacek AW, Barigou M. On the existence and stability of bulk nanobubbles. Langmuir, 2018, 34(37): 10964,
CrossRef Pubmed Google scholar
[[23]]
Anton N, Pierrat P, Brou GA, et al.. The pH-induced specific area changes of unsaturated lipids deposited onto a bubble interface. Langmuir, 2021, 37(8): 2586,
CrossRef Pubmed Google scholar
[[24]]
P. Forson, M. Zanin, W. Skinner, and R. Asamoah, Differential flotation of pyrite and Arsenopyrite: Effect of pulp aeration and the critical importance of collector concentration, Miner. Eng., 178(2022), art. No. 107421.
[[25]]
S.H. Xu, M. Zanin, W. Skinner, and S. Brito e Abreu, Surface chemistry of oxidised pyrite during grinding: ToF-SIMS and XPS surface analysis, Miner. Eng., 170(2021), art. No. 106992.
[[26]]
D.Z. Liu, G.F. Zhang, and B.B. Li, Electrochemical and XPS investigations on the galvanic interaction between pentlandite and pyrrhotite in collectorless flotation system, Miner. Eng., 190(2022), art. No. 107916.
[[27]]
Mattila S, Leiro JA, Heinonen M. XPS study of the oxidized pyrite surface. Surf. Sci., 2004, 566–568: 1097,
CrossRef Google scholar
[[28]]
Cai YF, Pan YG, Xue JY, Sun QF, Su GZ, Li X. Comparative XPS study between experimentally and naturally weathered pyrites. Appl. Surf. Sci., 2009, 255(21): 8750,
CrossRef Google scholar
[[29]]
Chimonyo W, Corin KC, Wiese JG, O’Connor CT. Redox potential control during flotation of a sulphide mineral ore. Miner. Eng., 2017, 110: 57,
CrossRef Google scholar
[[30]]
Valdivieso AL, López AAS, Song S. On the cathodic reaction coupled with the oxidation of xanthates at the pyrite/aqueous solution interface. Int. J. Miner. Process., 2005, 77(3): 154,
CrossRef Google scholar
[[31]]
Valdivieso AL, Cervantes TC, Song S, Cabrera AR, Laskowski JS. Dextrin as a non-toxic depressant for pyrite in flotation with xanthates as collector. Miner. Eng., 2004, 17(9): 1001,
CrossRef Google scholar
[[32]]
Multani RS, Williams H, Johnson B, Li RH, Waters KE. The effect of superstructure on the zeta potential, xanthate adsorption, and flotation response of pyrrhotite. Colloids Surf. A, 2018, 551: 108,
CrossRef Google scholar
[[33]]
S. Zhang, Y.J. Xian, S.M. Wen, G.Y. Liang, and Q. Geng, Contribution of ammonia in xanthates adsorption onto copper oxide mineral surface in high-alkaline solution, Appl. Surf. Sci., 630(2023), art. No. 157294.
[[34]]
Zhang YH, Cao Z, Cao YD, Sun CY. FTIR studies of xanthate adsorption on chalcopyrite, pentlandite and pyrite surfaces. J. Mol. Struct., 2013, 1048: 434,
CrossRef Google scholar
[[35]]
Bulut G, Atak S. Role of dixanthogen on pyrite flotation: Solubility, adsorption studies and Eh, FTIR measurements. Min. Metall. Explor., 2002, 19(2): 81
[[36]]
J. Yu, Y.Y. Ge, and X.W. Cai, The desulfurization of magnetite ore by flotation with a mixture of xanthate and dixanthogen, Minerals, 6(2016), No. 3, art. No. 70.
[[37]]
Y. Ma, M. Yang, L. Tang, et al., Flotation separation mechanism for secondary copper sulfide minerals and pyrite using novel collector ethyl isobutyl xanthogenic acetate, Colloids Surf. A, 634(2022), art. No. 128010.
[[38]]
J. Wu, B.Q. Yang, R. Martin, et al., Anisotropic adsorption of xanthate species on molybdenite faces and edges and its implication on the flotation of molybdenite fines, Miner. Eng., 207(2024), art. No. 108571.
[[39]]
Zhang Q, Hu YH, Gu GH, Nie ZH. Electrochemical flotation of ethyl xanthate-pyrrhotite system. Trans. Nonferrous Met. Soc. China, 2004, 14(6): 1174
[[40]]
Woods R, Basilio CI, Kim DS, Yoon RH. Ethyl xanthate chemisorption isotherms and Eh-pH diagrams for the silver+water+ethyl xanthate system. J. Electroanal. Chem., 1992, 328(1–2): 179,
CrossRef Google scholar
[[41]]
S. Zhang, Y.J. Xian, S.M. Wen, and G.Y. Liang, Enhancement of xanthate adsorption on lead-modified and sulfurized smithsonite surface in the presence of ammonia, Miner. Eng., 189(2022), art. No. 107872.
[[42]]
Zhang YH, Wu LM, Huang PP, Shen Q, Sun ZX. Determination and application of the solubility product of metal xanthate in mineral flotation and heavy metal removal in wastewater treatment. Miner. Eng., 2018, 127: 67,
CrossRef Google scholar
[[43]]
Mayerhöfer TG, Popp J. Beer’s law derived from electromagnetic theory. Spectrochim. Acta Part A, 2019, 215: 345,
CrossRef Google scholar
[[44]]
Mermillod-Blondin R, Kongolo M, De Donato P, et al.. Pyrite flotation with Xanthate under alkaline conditions-Application to environmental desulfurisation. Centenary of Flotation Symposium, 2005 683

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