Influence of electrodeposition parameters on the characteristics of Mn-Co coatings on Crofer 22 APU ferritic stainless steel

被引:15
作者
Ebrahimifar, Hadi [1 ]
Zandrahimi, Morteza [1 ]
机构
[1] Shahid Bahonar Univ Kerman, Dept Met & Mat Sci, Fac Engn, Kerman 76169133, Iran
关键词
Electrodeposition; manganese; cobalt; coating; current efficiency; TEMPERATURE OXIDATION RESISTANCE; SOFC INTERCONNECT APPLICATIONS; OXIDE FUEL-CELLS; SPINEL PROTECTION LAYERS; MANGANESE ALLOY COATINGS; AISI; 304-STAINLESS-STEEL; METALLIC INTERCONNECTS; BORIC-ACID; COBALT; PERFORMANCE;
D O I
10.1007/s12034-017-1473-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Manganese-cobalt coatings are promising candidates for solid oxide fuel cell (SOFC) interconnection applications because of their high conductivity and good oxidation resistance. In the present study, manganese and cobalt are electrodeposited on Crofer 22 APU ferritic stainless steel. The effects of current density, pH, sodium gluconate concentration, cobalt sulphate concentration and deposition duration on the microstructure and cathodic efficiency are characterized by means of scanning electron microscopy, weight gain measurements and energy-dispersive X-ray spectrometry, respectively. Results show that increases in current density and deposition duration lead to decrease in current efficiency and deposition rate. Increasing the pH to 2.5 causes an initial rise of current efficiency and deposition rate, followed by subsequent decline. In addition, the increases in sodium gluconate and cobalt sulphate concentrations in the electrolyte solution result in an increase in current efficiency and deposition rate. Moreover, the results demonstrate that the variations in the current density, pH, sodium gluconate (NaC6H11O7) concentration, cobalt sulphate concentration (CoSO4 center dot 7H(2)O) and duration have a significant effect on grain size, uniformity and the adherence of the coating.
引用
收藏
页码:1273 / 1283
页数:11
相关论文
共 48 条
[1]   Electrodeposition of cobalt from gluconate electrolyte [J].
Abd El Rehin, SS ;
Ibrahim, MAM ;
Dankeria, MM .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2002, 32 (09) :1019-1027
[2]  
Abd El-Rehim SS, 2000, J CHEM TECHNOL BIOT, V75, P237, DOI 10.1002/(SICI)1097-4660(200003)75:3<237::AID-JCTB189>3.0.CO
[3]  
2-I
[4]   Corrosion studies on electrodeposited nickel-manganese coatings [J].
Ananth, MV .
TRANSACTIONS OF THE INSTITUTE OF METAL FINISHING, 1997, 75 :224-227
[5]   RESIDUAL-STRESS DIAGRAMS FOR ELECTRODEPOSITED METAL COATINGS .2. RESIDUAL-STRESS DIAGRAMS DURING THE ELECTRODEPOSITION AND ANODIC-DISSOLUTION OF COBALT AND NICKEL COATINGS [J].
ARMYANOV, S ;
SOTIROVA, G .
SURFACE TECHNOLOGY, 1982, 17 (04) :329-340
[6]   Spinel coatings for UNS 430 stainless steel interconnects [J].
Bateni, M. Reza ;
Wei, Ping ;
Deng, Xiaohua ;
Petric, Anthony .
SURFACE & COATINGS TECHNOLOGY, 2007, 201 (08) :4677-4684
[7]  
Beatty R, 2004, MANGANESE ELEMENTS
[8]  
Boucher L J, 1988, GMELIN HDB INORGANIC
[9]  
Brenner A., 1963, ELECTRODEPOSITION AL, V2
[10]   Grain size effect on cyclic oxidation of (TiB2+TiC)/Ni3Al composites [J].
Cao Guo-jian ;
Xu Hong-yu ;
Zheng Zhen-zhu ;
Geng Lin ;
Masaaki, Naka .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2012, 22 (07) :1588-1593