Delineating brittle-phase embrittlement and ductile-phase toughening in Nb-based in-situ composites

Citation
Ks. Chan et Dl. Davidson, Delineating brittle-phase embrittlement and ductile-phase toughening in Nb-based in-situ composites, MET MAT T A, 32(11), 2001, pp. 2717-2727
Citations number
73
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science",Metallurgy
Journal title
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE
ISSN journal
10735623 → ACNP
Volume
32
Issue
11
Year of publication
2001
Pages
2717 - 2727
Database
ISI
SICI code
1073-5623(200111)32:11<2717:DBEADT>2.0.ZU;2-1
Abstract
The fracture toughness of Nb-based in-situ composites typically decreases w ith increasing volume fractions of hard intermetallic phases, despite the p resence of a ductile niobium solid-solution phase in the microstructure. Fo r composites with a continuous intermetallic matrix, the fracture toughness can be more than double that of the monolithic intermetallics, but is stil l low in absolute terms, indicating that the solid-solution phase is not ve ry effective in inducing ductile-phase toughening. The lack of enhancement of the fracture resistance appears to arise from an embrittlement effect in stigated by the brittle phases in the microstructure, whose nondeformabilit y results in a high plastic constraint acting on the ductile phase. In this article, an analytical model is developed for treating both brittle-phase embrittlement and ductile-phase toughening in terms of constituent properti es and microstructural variables. The model is then used to (1) delineate b rittle-phase embrittlement and ductile-phase toughening in Nb-based in-situ composites, and (2) design fracture-resistant in-situ composites based on Nb-Ti-Cr, Nb-Ti-Al, and Nb-Ti-Si systems.