Complex Metal Matrix Composites Produced by Powder Metallurgy from Core–Shell Powders

This study investigates the possibility of producing complex metal matrix composites (CMMCs) via powder metallurgy. Two types of powders, a mixture of core–shell Cu@Ag+W@Ag powder and dual core–shell W@(Cu@Ag) powder, have been successfully sintered using spark plasma sintering at 700 °C/5 min, forming Ag–(W+Cu) and Ag–(W@Cu) CMMCs, respectively. Scanning electron microscopy study revealed that both Ag–(W@Cu) and Ag–(W+Cu) CMMCs are characterized by a complex microstructure consisting of Ag matrix reinforced with W@Cu core–shell and a mixture of Cu+W particulates, respectively. The compression tests showed that Ag–(W@Cu) CMMC is characterized by the highest compression yield strength (CYS, 201 MPa) compared to pure Ag (27 MPa) or other counterparts (such as Ag–W, Ag–Cu). On the other hand, Ag–(W+Cu) CMMC exhibits a lower CYS value (150 MPa) by approximately 25% compared to Ag–(W@Cu) CMMC; while its tensile yield strength (TYS) reaches 99 MPa, which is 98% higher than the TYS of pure Ag (50 MPa).

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Journal
Metals
Published
2026-09-29
DOI
https://doi.org/10.3390/met16101076
Primary Topic
Aluminum Alloys Composites Properties
Type
article
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article

Complex Metal Matrix Composites Produced by Powder Metallurgy from Core–Shell Powders

Drahomír Dvorský, Jakub Svoboda, Stanislav Habr, Angelina Strakošová et al.
Metals
Aluminum Alloys Composites Properties
article

Complex Metal Matrix Composites Produced by Powder Metallurgy from Core–Shell Powders

Drahomír Dvorský, Jakub Svoboda, Stanislav Habr, Angelina Strakošová, Filip Průša, Andrea Školáková, Pavel Lejček
article en

Abstract

This study investigates the possibility of producing complex metal matrix composites (CMMCs) via powder metallurgy. Two types of powders, a mixture of core–shell Cu@Ag+W@Ag powder and dual core–shell W@(Cu@Ag) powder, have been successfully sintered using spark plasma sintering at 700 °C/5 min, forming Ag–(W+Cu) and Ag–(W@Cu) CMMCs, respectively. Scanning electron microscopy study revealed that both Ag–(W@Cu) and Ag–(W+Cu) CMMCs are characterized by a complex microstructure consisting of Ag matrix reinforced with W@Cu core–shell and a mixture of Cu+W particulates, respectively. The compression tests showed that Ag–(W@Cu) CMMC is characterized by the highest compression yield strength (CYS, 201 MPa) compared to pure Ag (27 MPa) or other counterparts (such as Ag–W, Ag–Cu). On the other hand, Ag–(W+Cu) CMMC exhibits a lower CYS value (150 MPa) by approximately 25% compared to Ag–(W@Cu) CMMC; while its tensile yield strength (TYS) reaches 99 MPa, which is 98% higher than the TYS of pure Ag (50 MPa).

MetalsVol. 16(10)
Czech Academy of Sciences (CZ), Safina (Czechia) (CZ), FZU ‒ Institute of Physics of the Academy of Sciences of the Czech Republic (CZ), University of Chemistry and Technology, Prague (CZ)
Openalex Percentile: Top 21%
Aluminum Alloys Composites Properties
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Complex Metal Matrix Composites Produced by Powder Metallurgy from Core–Shell Powders — Drahomír Dvorský, Jakub Svoboda, et al. · Metals (2026) | TGRS Research Map | TGRS