Effects of Material Structure on Stress Relaxation Characteristics of Rapidly Solidified Al-Fe Alloy.

aluminum alloy electrical conductor mechanical property powder metallurgy stress relaxation

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
30 Aug 2023
Historique:
received: 04 08 2023
revised: 26 08 2023
accepted: 28 08 2023
medline: 9 9 2023
pubmed: 9 9 2023
entrez: 9 9 2023
Statut: epublish

Résumé

An Al-Fe alloy which was produced by hot extrusion of rapidly solidified powder is a possible solution to substitute copper-based electrical conductor material due to its high strength and high electrical conductivity. However, the stress relaxation characteristic-an essential parameter as a conductor material-and the effect of the material structure have not been reported, which was the aim of the present paper. An Al-5%Fe alloy was selected as the test material. The material structures were controlled by hot extrusion practice, annealing, and cold rolling. The Al-Fe intermetallic compound particles controlled the residual stress after the stress relaxation test via the Orowan mechanism. Decreasing the mean inter-particle distance reduces the electrical conductivity. The increase in the number of dislocations by the cold rolling increased strength at room temperature without changing electrical conductivity; however, it did not have a positive effect on the stress relaxation characteristics. The stress relaxation characteristics and the electrical conductivity of the Al-Fe alloy were superior to conventional C52100 H04 phosphor bronze when compared with the case of the same mass.

Identifiants

pubmed: 37687638
pii: ma16175949
doi: 10.3390/ma16175949
pmc: PMC10488918
pii:
doi:

Types de publication

Journal Article

Langues

eng

Références

Materials (Basel). 2023 Jul 17;16(14):
pubmed: 37512324

Auteurs

Ryohei Kobayashi (R)

Advanced Materials Laboratory, Sumitomo Electric Industries, Ltd., Itami-shi 664-0016, Japan.
Graduate School of Science and Engineering, University of Toyama, Toyama-shi 930-8555, Japan.

Tatsuya Funazuka (T)

Academic Assembly Faculty of Engineering, University of Toyama, Toyama-shi 930-8555, Japan.

Toru Maeda (T)

Advanced Materials Laboratory, Sumitomo Electric Industries, Ltd., Itami-shi 664-0016, Japan.

Tomomi Shiratori (T)

Academic Assembly Faculty of Engineering, University of Toyama, Toyama-shi 930-8555, Japan.

Classifications MeSH