Activation flotation and activating mechanism of cyanide-depressed pyrite using sodium persulfate and ferrous sulfate

被引:3
作者
Yuan, Qinzhi [1 ]
Wang, Mengyu [1 ,2 ]
Shi, Changliang [1 ]
Fang, Ji [1 ]
Qiu, Xianhui [1 ,2 ]
Qiu, Tingsheng [2 ]
机构
[1] Henan Polytech Univ, Coll Chem & Chem Engn, Jiaozuo 454000, Peoples R China
[2] Jiangxi Univ Sci & Technol, Sch Resource & Environm Engn, Ganzhou 341000, Peoples R China
关键词
Pyrite; Cyanide Depression; Activator; Flotation; EPR; GOLD; DEGRADATION; ADSORPTION; ABATEMENT; XANTHATE; SULFIDE; SYSTEMS;
D O I
10.1016/j.mineng.2025.109206
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Cyanide tailings were produced by cyanidation gold extraction and normally contained a large amount of unrecovered valuable metals. At present, there are few pieces of research on the activation flotation recovery of useful minerals in cyanidation tailings. In this paper, the activation flotation of cyanide-depressed pyrite using sodium persulfate (PDS) and ferrous sulfate (Fe(II)) was systematically studied by microflotation tests. The activating mechanism was analyzed by FTIR spectroscopy, zeta potential measurement and electron paramagnetic resonance (EPR) analysis. The microflotation tests showed that pyrite flotation was deeply depressed in the presence of sodium cyanide (NaCN). The flotation of cyanide-depressed pyrite could be largely improved by the addition of individual PDS or combined PDS and Fe(II). The dosage of combined PDS and Fe(II) was lower and their activating effect was better than using PDS alone. Zeta potential measurements and FTIR analysis revealed that NaCN was adsorbed on the pyrite surface to generate the hydrophilic ferricyanide, which can reduce the pyrite floatability. The individual PDS or combined PDS and Fe(II) could react with ferricyanide to destroy the hydrophilic adsorption layer and restore the hydrophobicity of pyrite surface. EPR analysis indicated that the oxidation system of pyrite with combined PDS and Fe(II) could produce more powerful SO4-center dot and HO center dot than individual PDS. The radical scavenging experiments further confirmed that the generating free radicals were the active species for the destruction of ferricyanide and reduction of the activator dosage.
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页数:7
相关论文
共 37 条
[31]   Recent advances in persulfate-based advanced oxidation processes for organic wastewater treatment [J].
Tian, Ke ;
Hu, Limin ;
Li, Letian ;
Zheng, Qingzhu ;
Xin, Yanjun ;
Zhang, Guangshan .
CHINESE CHEMICAL LETTERS, 2022, 33 (10) :4461-4477
[32]   Removal of cyanide adsorbed on pyrite by H2O2 oxidation under alkaline conditions [J].
Tu, Yubo ;
Han, Peiwei ;
Wei, Lianqi ;
Zhang, Xiaomeng ;
Yu, Bo ;
Qian, Peng ;
Ye, Shufeng .
JOURNAL OF ENVIRONMENTAL SCIENCES, 2019, 78 :287-292
[33]   Solution electrochemistry of sulfide-xanthate-cyanide systems in sulfide mineral flotation [J].
Wang, XH ;
Forssberg, KSE .
MINERALS ENGINEERING, 1996, 9 (05) :527-546
[34]   A review of gold extraction using alternatives to cyanide: Focus on current status and future prospects of the novel eco-friendly synthetic gold lixiviants [J].
Zhang, Yan ;
Cui, Mingyao ;
Wang, Jianguo ;
Liu, Xiaoliang ;
Lyu, Xianjun .
MINERALS ENGINEERING, 2022, 176
[35]   The interaction of cyanide with pyrite, marcasite and pyrrhotite [J].
Zhao, Cuihua ;
Huang, Dewei ;
Chen, Jianhua ;
Li, Yuqiong ;
Chen, Ye ;
Li, Weizhou .
MINERALS ENGINEERING, 2016, 95 :131-137
[36]   Removal of Microcystis aeruginosa by natural pyrite-activated persulfate: Performance and the significance of iron species [J].
Zheng, Xiaoxian ;
Niu, Xiaojun ;
Zhang, Dongqing ;
Ye, Xingyao ;
Ma, Jinling ;
Lv, Mengyu ;
Lin, Zhang .
CHEMICAL ENGINEERING JOURNAL, 2022, 428
[37]   Contribution of alcohol radicals to contaminant degradation in quenching studies of persulfate activation process [J].
Zhu, Changyin ;
Zhu, Fengxiao ;
Dionysiou, Dionysios D. ;
Zhou, Dongmei ;
Fang, Guodong ;
Gao, Juan .
WATER RESEARCH, 2018, 139 :66-73