Powder metallurgy of stainless steels and composites: a review of mechanical alloying and spark plasma sintering

被引:0
作者
Samuel Ranti Oke
Oladeji Oluremi Ige
Oluwasegun Eso Falodun
Avwerosuoghene M. Okoro
Mahlatse R. Mphahlele
Peter Apata Olubambi
机构
[1] University of Johannesburg,Center for Nanoengineering and Tribocorrosion, School of Mining, Metallurgy and Chemical Engineering
[2] Federal University of Technology Akure,Department of Metallurgical and Materials Engineering
[3] Obafemi Awolowo University,Department of Materials Science and Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2019年 / 102卷
关键词
Powder metallurgy; Stainless steels; Mechanical alloying (MA); Spark plasma sintering (SPS); Properties;
D O I
暂无
中图分类号
学科分类号
摘要
Although SPS has been studied for a rapidly growing number of materials, there is limited number of researches on the fabrication and microstructural characterization of stainless steels processed by SPS. This article reviewed and provided a critical discussion on the mechanical alloying (MA) and spark plasma sintering (SPS) of dispersion-strengthened stainless steel with emphasis on process parameters, reinforcement efficiencies, microstructural evolutions, and mechanical properties. The influence of spark plasma sintering process parameters on microstructure, phase evolution, and mechanical properties of reinforced stainless steels is reviewed in this work. The role of alloying elements and ceramic reinforcements, their dispersion into the stainless steel matrix, and the importance of matrix-reinforcement interface are highlighted. Current and potential areas of applications of PM stainless steel and suggestions for future research are discussed in this paper.
引用
收藏
页码:3271 / 3290
页数:19
相关论文
共 619 条
[1]  
Karahan T(2014)Strengthening of AISI 2205 duplex stainless steel by strain ageing Mater Des 55 250-256
[2]  
Ertek Emre H(2012)Turbula mixing characteristics of carbide powders and its influence on laser processing of stainless steel composite coatings Powder Technol 230 169-182
[3]  
Tümer M(2009)The beneficial effect of ruthenium additions on the passivation of duplex stainless steel corrosion in sodium chloride solutions Corros Sci 51 1364-1371
[4]  
Kaçar R(2015)The influence of nanocrystalline structure and processing route on corrosion of stainless steel: a review Corros Sci 92 1-15
[5]  
Obadele BA(2011)Development of Al added high-Cr ODS steels for fuel cladding of next generation nuclear systems J Nucl Mater 417 176-179
[6]  
Masuku ZH(2016)Effect of 4-point bending and normal load on the tribocorrosion-fatigue (multi-degradation) of stainless steels Tribol Int 99 96-106
[7]  
Olubambi PA(2014)Fatigue behaviour of sintered duplex stainless steel Procedia Eng 74 421-428
[8]  
Sherif E-SM(2016)Effects of Nano-Y2O3 and sintering parameters on the fabrication of PM duplex and ferritic stainless steels Acta Metall Sin (English Letters) 29 58-71
[9]  
Potgieter JH(2016)Super and hyper duplex stainless steels: structures, properties and applications Procedia Struct Integr 2 1755-1762
[10]  
Comins JD(2010)Effect of ageing heat treatments on the microstructure and intergranular corrosion of powder metallurgy duplex stainless steels Corros Sci 52 3725-3737