Effect of mechanical alloying on the microstructural evolution of a ferritic ODS steel with (Y-Ti-Al-Zr) addition processed by Spark Plasma Sintering (SPS)

被引:10
作者
Macia, E. [1 ]
Garcia-Junceda, A. [2 ]
Serrano, M. [3 ]
Hong, S. J. [4 ]
Campos, M. [1 ]
机构
[1] Univ Carlos III Madrid, Dept Mat Sci & Engn, IAAB, Ave Univ 30, Leganes 28911, Spain
[2] IMDEA Mat Inst, C Eric Kandel 2, Getafe 28906, Spain
[3] CIEMAT, Dept Technol, Struct Mat Div, Avda Complutense 22, Madrid 28040, Spain
[4] Kongju Natl Univ, Div Adv Mat Engn, Chunan, South Korea
关键词
ODS steel; Mechanical alloying; Spark plasma sintering (SPS); Recrystallization; Small punch test; DISPERSION-STRENGTHENED ALLOYS; ZIRCONIUM ADDITION; ABNORMAL GROWTH; HIGH-CR; RECRYSTALLIZATION; IRRADIATION; PARAMETERS; ANISOTROPY; PARTICLES; STABILITY;
D O I
10.1016/j.net.2021.02.002
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
The high-energy milling is one of the most extended techniques to produce Oxide dispersion strengthened (ODS) powder steels for nuclear applications. The consequences of the high energy mill process on the final powders can be measured by means of deformation level, size, morphology and alloying degree. In this work, an ODS ferritic steel, (Fe) under bar-(14Cr) under bar-(5Al) under bar-(3W-0.4Ti-0.25Y2O3) under bar-(0.6Zr) under bar, was fabricated using two different mechanical alloying (MA) conditions ((M) under bar (st)(d) and (M) under bar (act)) and subsequently consolidated by Spark Plasma Sintering (SPS). Milling conditions were set to evidence the effectivity of milling by changing the revolutions per minute (rpm) and dwell milling time. Differences on the particle size distribution as well as on the stored plastic deformation were observed, determining the consolidation ability of the material and the achieved microstructure. Since recrystallization depends on the plastic deformation degree, the composition of each particle and the promoted oxide dispersion, a dual grain size distribution was attained after SPS consolidation. M-act showed the highest areas of ultrafine regions when the material is consolidated at 1100 degrees C. Microhardness and small punch tests were used to evaluate the material under room temperature and up to 500 degrees C. The produced materials have attained remarkable mechanical properties under high temperature conditions. (C) 2021 Korean Nuclear Society, Published by Elsevier Korea LLC.
引用
收藏
页码:2582 / 2590
页数:9
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