Influence of differential stress on the galvanic interaction of pyrite–chalcopyrite

被引:0
|
作者
Qingyou Liu
Yanqing Zhang
Heping Li
机构
[1] Chinese Academy of Sciences,Laboratory for High Temperature & High Pressure Study of the Earth’s Interior, Institute of Geochemistry
[2] Graduate University of Chinese Academy of Sciences,undefined
来源
Ionics | 2013年 / 19卷
关键词
Pyrite; Chalcopyrite; Galvanic corrosion; Polarization curves; EIS; Differential stress;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of stress action on pyrite–chalcopyrite galvanic corrosion was investigated using polarization curves and electrochemical impedance spectroscopy (EIS) measurements. When stress increased from 0 to 4 × 105 Pa, the corrosion current density of pyrite–chalcopyrite increased from 5.678 to 6.719 μA cm−2, and the corrosion potential decreased from 281.634 to 270.187 mV, accompanied by a decrease in polarization resistance from 25.09 to 23.79 Ω·cm2. EIS results show there have three time constants in the Nyquist diagrams, which indicated the presence of different steps during the corrosion process. Stress dramatically enhanced pyrite–chalcopyrite galvanic corrosion by affecting the Cu1 − xFe1 − yS2 film and the double layer, whereas had little impact on the adsorption species. When the stress changed from 0 to 4 × 105 Pa, the pore resistance and capacitance of the Cu1 − xFe1 − yS2 film, Rp and Qp, changed by 25.72 and 72.28 %, respectively. The adsorption species resistance, Rsl, and capacitance, Qsl, only changed by 9.77 and 2.31 %, respectively.
引用
收藏
页码:77 / 82
页数:5
相关论文
共 50 条
  • [31] Galvanic interaction between chalcopyrite and manganese dioxide in sulfuric acid medium
    B. P. Gantayat
    P. C. Rath
    R. K. Paramguru
    S. B. Rao
    Metallurgical and Materials Transactions B, 2000, 31 : 55 - 61
  • [32] Effects of Galvanic Interaction between Chalcopyrite and Monoclinic Pyrrhotite on Their Flotation Separation
    Yang, Liu
    Zhou, Xiaowen
    Yan, Huashan
    Zhang, Hongliang
    Liu, Xiaohe
    Qiu, Tingsheng
    MINERALS, 2022, 12 (01)
  • [33] Does galvanic coupling with pyrite increase the rate of dissolution of chalcopyrite under ambient conditions? An electrochemical study
    Nicol, Michael J.
    HYDROMETALLURGY, 2022, 208
  • [34] Optimization of Chalcopyrite Galvanic Leaching in the Presence of Pyrite and Silver as Catalysts by using Response Surface Methodology (RSM)
    Chehreghani, Sajjad
    Yari, Mojtaba
    Zeynali, Amir
    Akhgar, Behzad Nemati
    Gharehgheshlagh, Hojjat Hosseinzadeh
    Pishravian, Mahsa
    RUDARSKO-GEOLOSKO-NAFTNI ZBORNIK, 2021, 36 (01): : 37 - 47
  • [35] An experimental study on galvanic interaction between galena and pyrite in an open system
    Zhou, Li
    Li, He-Ping
    Xu, Li-Ping
    Kuangwu Yanshi, 2006, 26 (01): : 110 - 115
  • [36] Influence diversity of extracellular DNA on bioleaching chalcopyrite and pyrite bySulfobacillus thermosulfidooxidansST
    Zeng, Wei-min
    Cai, Yu-xin
    Hou, Chun-wei
    Liu, A-juan
    Peng, Tang-jian
    Chen, Miao
    Qiu, Guan-zhou
    Shen, Li
    JOURNAL OF CENTRAL SOUTH UNIVERSITY, 2020, 27 (05) : 1466 - 1476
  • [37] Effect of pyrite type on the electrochemistry of chalcopyrite/pyrite interactions
    Forbes, Elizaveta
    Smith, Leanne
    Vepsalainen, Mikko
    PHYSICOCHEMICAL PROBLEMS OF MINERAL PROCESSING, 2018, 54 (04): : 1116 - 1129
  • [38] Competitive bioleaching of pyrite and chalcopyrite
    Petersen, Jochen
    Dixon, David G.
    HYDROMETALLURGY, 2006, 83 (1-4) : 40 - 49
  • [39] Thiobacillus ferrooxidans interaction with sulfide minerals and selective chalcopyrite flotation from pyrite
    Sharma, PK
    Das, A
    Rao, KH
    Forssberg, KSE
    ADVANCES IN FLOTATION TECHNOLOGY, 1999, : 147 - 165
  • [40] Effects of galvanic interaction between galena and pyrite on their flotation in the presence of butyl xanthate
    Qin, Wen-qing
    Wang, Xing-jie
    Ma, Li-yuan
    Jiao, Fen
    Liu, Rui-zeng
    Gao, Ke
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2015, 25 (09) : 3111 - 3118