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Phase, microstructure, and properties of fine-grained Mo-W-Cu alloys prepared by mechanical alloying and large electric current sintering.

Authors :
Zhou, Hongling
Luan, Baifeng
Feng, Keqin
Source :
Journal of the Taiwan Institute of Chemical Engineers; Mar2024, Vol. 156, pN.PAG-N.PAG, 1p
Publication Year :
2024

Abstract

• The rapid densification of Mo-W-Cu alloy was achieved at a relatively low temperature. • The densification of Mo-W-Cu alloy was significantly improved through mechanical alloying. • Mo-W-Cu alloy prepared by MA-LCS contained three new phases besides W, Mo, and Cu. The novel Mo-W-Cu alloy exhibits relatively low density and good high-temperature resistance. However, due to the poor sintering ability of the mixed powders, enhancing the densification and properties of the alloys remains a challenge. We prepared fine-grained Mo-W-Cu alloys by a combination of mechanical alloying (MA) and large electric current sintering (LCS) at relatively low temperatures and short durations and then conducted a comprehensive systematic inquiry into the densification behavior, phase, microstructure, and properties of the resulting alloys. It was revealed that the MA process did not affect the phase-type of the alloy but significantly altered its densification, microstructure, and properties. In addition to the pre-existing Mo, W, and Cu phases, XRD and TEM results unveiled three new phases formed in the alloys, namely Cu 0.4 W 0.6 intermetallic compound, Mo-W solid solution, and Mo-Cu solid solution, none of which are present in an equilibrium state. The MA process is pivotal in refining powder particles, fostering elemental homogeneity, thereby enhancing the densification of Mo-W-Cu alloys. In comparison, the microstructure of the Mo-W-Cu alloys prepared with the MA process becomes denser and more homogeneous, accompanied by a marked improvement in both densification and properties. Notably, Mo-W-Cu alloys prepared with a ball milling time of 40 h exhibit optimal properties, achieving an approximate relative density of 98 %. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
18761070
Volume :
156
Database :
Supplemental Index
Journal :
Journal of the Taiwan Institute of Chemical Engineers
Publication Type :
Academic Journal
Accession number :
175832717
Full Text :
https://doi.org/10.1016/j.jtice.2024.105357