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Spatial mapping of the localized corrosion behavior of a magnesium alloy AZ31B tungsten inert gas weld
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作者 Leslie G.(Bland)Miller Corey M.Efaw +6 位作者 Rebecca F.Schaller Kari Higginbotham Steve D.Johns Paul H.Davis Elton Graugnard John R.Scully Michael F.Hurley 《Journal of Magnesium and Alloys》 2025年第1期193-206,共14页
Sections of a magnesium alloy,AZ31B,joined with tungsten inert gas(TIG)welding,were examined with scanning electrochemical microscopy(SECM)and scanning Kelvin probe force microscopy(SKPFM)to investigate corrosion mech... Sections of a magnesium alloy,AZ31B,joined with tungsten inert gas(TIG)welding,were examined with scanning electrochemical microscopy(SECM)and scanning Kelvin probe force microscopy(SKPFM)to investigate corrosion mechanisms by correlating observed corrosion behavior with weld-affected microstructural variations.Insight into the changing nature of the galvanic couples between weld zones and at localized microgalvanic sites were investigated using SECM and SKPFM to map both electrochemically active regions and Volta potential differences across the weld-affected zones.The formation of an Al-Zn solidification network in the fusion zone(FZ)at and near the TIG weld epicenter differs from the outer heat-affected zone(HAZ),where intermetallic particles(IMPs)are the notable secondary phase from the magnesium matrix.These microstructures were mapped with SKPFM before and after brief exposure to a salt solution,revealing micro-galvanic couples as the main driving force to corrosion initiation and propagation within each zone.The IMPs and Al-Zn solidification network act as strong cathodes and govern the corrosion processes.The galvanic coupling and evolution of the intrinsic corrosion behavior between the weld zones is explained by monitoring the hydrogen evolution reaction(HER)with SECM over time.Anodically induced cathodic activation is confirmed for this welded material,as micro-galvanic couples between microstructural features are found to transition over time to broad electrochemically active areas within the weld-affected zones,resulting in polarity reversal as time of exposure proceeds.©2025 Chongqing University.Publishing services provided by Elsevier B.V.on behalf of KeAi Communications Co.Ltd. 展开更多
关键词 Scanning electrochemical microscopy(SECM) Scanning kelvin probe force microscopy(SKPFM) Hydrogen evolution reaction(HER) anodically induced cathodic activation
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Formation mechanism of electroless plating nickel-based composite coating on highly active rare earth magnesium alloys and its corrosion resistance and adhesion performance
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作者 WANG Bo LI Jia-wei +3 位作者 XIE Zhi-hui LIU Kang XU Tao YU Gang 《Journal of Central South University》 SCIE EI CAS CSCD 2024年第10期3517-3531,共15页
The process of preparing anodic oxide film containing active sites and electroless nickel plating on highly active rare earth magnesium alloy was developed.The formation mechanism of electroless nickel plating on acti... The process of preparing anodic oxide film containing active sites and electroless nickel plating on highly active rare earth magnesium alloy was developed.The formation mechanism of electroless nickel plating on active anodic oxide film and the structure and properties of the composite coating were studied by several surface and electrochemical techniques.The results showed that Ag nanograins with an average size of 10 nm were embedded into the anodic oxide film with pores of 0.1−2μm.Ag nanoparticles provided a catalytic site for the deposition of Ni-B alloy,and the Ni crystal nucleus was first grown in horizontal mode and then in cylindrical mode.The corrosion potential of the composite coating increased by 1.37 V and the corrosion current reduced two orders of magnitude due to the subsequent deposition of Ni-P alloy.The high corrosion resistance was attributed to the misaligning of these micro defects in the three different layers and the amorphous structure of the Ni-P alloy in the outer layer.These findings provide a new idea for electroless nickel plating on anodic oxide film. 展开更多
关键词 rare earth magnesium alloy electroless nickel plating composite coating Ag+activation active anodic oxidation film growth mechanism
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Properties of Al/Conductive Coating/α-PbO2-CeO2-TiO2/β-PbO2-WC-ZrO2 Composite Anode for Zinc Electrowinning 被引量:2
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作者 杨健 陈步明 +3 位作者 GUO Zhongcheng HUANG Hui XU Ruidong JIN Bingjie 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 2017年第3期538-546,共9页
The properties of Al/conductive coating/α-PbO2-CeO2-TiO2/β-PbO2-WC-ZrO2 composite anode for zinc electrowinning were investigated. The electrochemical performance was studied by Tafel polarization curves(Tafel), e... The properties of Al/conductive coating/α-PbO2-CeO2-TiO2/β-PbO2-WC-ZrO2 composite anode for zinc electrowinning were investigated. The electrochemical performance was studied by Tafel polarization curves(Tafel), electrochemical impedance spectroscopy(EIS) and corrosion rate obtained in an acidic zinc sulfate electrolyte solution. Scanning electron microscopy(SEM), X-ray diffraction(XRD), and energy dispersive X-ray spectroscopy(EDXS) were used to observe the microstructural features of coating. Anodes of Al/conductive coating/α-PbO2-CeO2-TiO2/β-PbO2, Al/conductive coating/α-PbO2-CeO2-TiO2/β-PbO2-WC, Al/conductive coating/α-PbO2-CeO2-TiO2/β-PbO2-ZrO2, and Pb-1%Ag anodes were also researched. The results indicated that the Al/conductive coating/α-PbO2-CeO2-TiO2/β-PbO2-WC-ZrO2 showed the best catalytic activity and corrosion resistant performance; the intensity of diffraction peak exhibited the highest value as well as a new PbWO4 phase; the content of WC and ZrO2 in coating showed the highest value as well as the finest grain size. 展开更多
关键词 coating composite anode corrosion resistant electrocatalytic activity zinc electrowinning
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