期刊文献+

Effect of rolling technologies on the properties of Pb?0.06wt%Ca?1.2wt%Sn alloy anodes during copper electrowinning 被引量:4

Effect of rolling technologies on the properties of Pb?0.06wt%Ca?1.2wt%Sn alloy anodes during copper electrowinning
下载PDF
导出
摘要 The objective of this work was to study the effect of different rolling technologies on the properties of Pb-0.06wt%Ca-1.2wt%Sn anodes during copper electrowinning and to determine the relationship between the properties of the anodes and rolling techniques during copper electrowinning. The anode process was investigated via anodic polarization curves, cyclic voltammetry curves, electrochemical impedance spectra, and corrosion tests. The microscopic morphology and phase composition of the anodic oxide layers were observed by scanning electron microscopy and X-ray diffraction, respectively. Observable variations in the electrocatalytic activity and reaction kinetics of anodes during electrowinning indicated that the electrochemical behavior of the anodes was strongly affected by the rolling technology. An increase in the rolling number tended to decrease the oxygen evolution overpotential and the corrosion rate of the anodes. These trends are contrary to that of the apparent exchange current density. Furthermore, the intensities of diffraction peaks associated with PbO, PbOx, and α-PbO2 tended to increase with increasing rolling number. In addition, the rolled anodes exhibited a more uniform microstructure. Compared with one-way rolled anodes, the eight-time cross rolled anodes exhibited better electrocatalytic activity and improved corrosion resistance. The objective of this work was to study the effect of different rolling technologies on the properties of Pb-0.06wt%Ca-1.2wt%Sn anodes during copper electrowinning and to determine the relationship between the properties of the anodes and rolling techniques during copper electrowinning. The anode process was investigated via anodic polarization curves, cyclic voltammetry curves, electrochemical impedance spectra, and corrosion tests. The microscopic morphology and phase composition of the anodic oxide layers were observed by scanning electron microscopy and X-ray diffraction, respectively. Observable variations in the electrocatalytic activity and reaction kinetics of anodes during electrowinning indicated that the electrochemical behavior of the anodes was strongly affected by the rolling technology. An increase in the rolling number tended to decrease the oxygen evolution overpotential and the corrosion rate of the anodes. These trends are contrary to that of the apparent exchange current density. Furthermore, the intensities of diffraction peaks associated with PbO, PbOx, and α-PbO2 tended to increase with increasing rolling number. In addition, the rolled anodes exhibited a more uniform microstructure. Compared with one-way rolled anodes, the eight-time cross rolled anodes exhibited better electrocatalytic activity and improved corrosion resistance.
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2015年第11期1205-1211,共7页 矿物冶金与材料学报(英文版)
基金 financial support of the National Natural Science Foundation of China (No.51004056) the Applied Basic Research Foundation of Yunnan Province (No. 2010ZC052) the Specialized Research Fund for the Doctoral Program of Higher Education of China (No. 20125314110011)
关键词 anode materials lead calcium tin alloys rolling electrocatalysis corrosion rate electrowinning anode materials lead calcium tin alloys rolling electrocatalysis corrosion rate electrowinning
  • 相关文献

参考文献2

二级参考文献17

  • 1Karden, Eckhard, Buller, et al. Method for measurement and interpretation of impedance spectra for industrial batteries[J]. Journal of Power Sources, 2000, 85(1): 72-78.
  • 2Gruenstern, Robert G, Pierson, et al. Inspira TM-an enabling battery technology for high voltage automotive electrical systems[J]. Journal of Power Sources,2000, 91(1): 62-67.
  • 3Bagshaw N E. Gaston plant medal address-metallic and alloy structures in battery grids[J]. Journal of Power Sources, 2000, 85(1): 9- 14.
  • 4Takehara Z, Kanamura K, Kawanami M. Oxidation reaction of lead sulfate formed at the interface between the lead plate and the porous active material of a lead acid battery[J]. Journal of the Electrochemical Society, 1990, 137(3): 800-804.
  • 5Culpin B, Hollenkamp A F, Rand D A J. The effect of tin on the performance of positive plates in lead-acid batteries[J]. Journal of Power Sources, 1992, 38(1):63 - 74.
  • 6Hollenkamp A F, Constanti K K, Koop M J, et al.Effects of grid alloy on the properties of positive-plate corrosion layers in lead-acid batteries. Implications for premature capacity loss under repetitive deep-discharge cycling service[J]. Journal of Power
  • 7CUI Rong-long, WU Shou-song. Lead alloys for maintenance-free and sealed lead-acid batteries[J]. Journal of Power Sources, 1993, 46(1): 327 - 333.
  • 8Bui N, Mattesco P, Simon P, et al. Fundamental research on the role of alloying tin as a means to eliminate the passivation phenomena in lead-acid batteries[J]. Journal of Power Sources, 1998, 73(1): 30 -35.
  • 9Takahashi K, Hoshihara N, Yasuda H, et al. Phenomena at the interface between positive active material and lead-calcium-tin grids[J]. Journal of Power Sources, 1990, 30(1): 23-31.
  • 10Panesar H S, Portscher V. Left bracket lead sulfate distribution in discharged negative electrode plates of lead batteries right bracket [J]. Metalloberflaeche,1972, 26(7): 252-253.

共引文献83

同被引文献43

引证文献4

二级引证文献19

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