Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite

The microstructure and mechanical properties of stainless-steel AISI 304 wire mesh–reinforced AlSi9Cu-matrix composite specimens obtained by gravity casting were investigated. Optical and scanning electron microscope analyses were carried out on samples in both as-cast and solution heat treated con...

Full description

Bibliographic Details
Main Authors: Paolo Ferro, Alberto Fabrizi, Franco Bonollo, Filippo Berto
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2020-12-01
Series:Frattura ed Integrità Strutturale
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/2973
id doaj-4f80aa4419a0424d8cd0e45398eeecc7
record_format Article
spelling doaj-4f80aa4419a0424d8cd0e45398eeecc72020-12-31T07:59:13ZengGruppo Italiano FratturaFrattura ed Integrità Strutturale1971-89932020-12-01155510.3221/IGF-ESIS.55.22Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix compositePaolo Ferro0Alberto Fabrizi1Franco Bonollo2Filippo Berto3University of Padova, ItalyUniversity of Padova, ItalyUniversity of Padova, ItalyNorwegian University of Science and Technology - NTNU, Norway The microstructure and mechanical properties of stainless-steel AISI 304 wire mesh–reinforced AlSi9Cu-matrix composite specimens obtained by gravity casting were investigated. Optical and scanning electron microscope analyses were carried out on samples in both as-cast and solution heat treated conditions. The obtained results showed the absence of intermetallic phases at the insert/Al-matrix interface but even a significant fraction of lack-of-filling defects as well as lack-of-bonding areas that weekend the interface itself. The solution heat treatment, on the other hand, induced the precipitation of a thick and brittle intermetallic layer in the areas where a metallurgical bonding formed during casting. Moreover, the silicon particle spheroidization, improved the ductility of the matrix. The resulting microstructure allowed to obtain a slight improvement of elongation at failure of the compound casting compared to that of the aluminum alloy. Finally, basing on the obtained results, improvements are suggested that take into account both the preconditioning of the reinforcement surface and its geometry. https://www.fracturae.com/index.php/fis/article/view/2973Al/Fe bimetallic castingsinterfaceintermetallic compoundsmicrostructure;mechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Paolo Ferro
Alberto Fabrizi
Franco Bonollo
Filippo Berto
spellingShingle Paolo Ferro
Alberto Fabrizi
Franco Bonollo
Filippo Berto
Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite
Frattura ed Integrità Strutturale
Al/Fe bimetallic castings
interface
intermetallic compounds
microstructure;
mechanical properties
author_facet Paolo Ferro
Alberto Fabrizi
Franco Bonollo
Filippo Berto
author_sort Paolo Ferro
title Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite
title_short Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite
title_full Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite
title_fullStr Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite
title_full_unstemmed Microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced Al-matrix composite
title_sort microstructural and mechanical characterization of a stainless-steel wire mesh–reinforced al-matrix composite
publisher Gruppo Italiano Frattura
series Frattura ed Integrità Strutturale
issn 1971-8993
publishDate 2020-12-01
description The microstructure and mechanical properties of stainless-steel AISI 304 wire mesh–reinforced AlSi9Cu-matrix composite specimens obtained by gravity casting were investigated. Optical and scanning electron microscope analyses were carried out on samples in both as-cast and solution heat treated conditions. The obtained results showed the absence of intermetallic phases at the insert/Al-matrix interface but even a significant fraction of lack-of-filling defects as well as lack-of-bonding areas that weekend the interface itself. The solution heat treatment, on the other hand, induced the precipitation of a thick and brittle intermetallic layer in the areas where a metallurgical bonding formed during casting. Moreover, the silicon particle spheroidization, improved the ductility of the matrix. The resulting microstructure allowed to obtain a slight improvement of elongation at failure of the compound casting compared to that of the aluminum alloy. Finally, basing on the obtained results, improvements are suggested that take into account both the preconditioning of the reinforcement surface and its geometry.
topic Al/Fe bimetallic castings
interface
intermetallic compounds
microstructure;
mechanical properties
url https://www.fracturae.com/index.php/fis/article/view/2973
work_keys_str_mv AT paoloferro microstructuralandmechanicalcharacterizationofastainlesssteelwiremeshreinforcedalmatrixcomposite
AT albertofabrizi microstructuralandmechanicalcharacterizationofastainlesssteelwiremeshreinforcedalmatrixcomposite
AT francobonollo microstructuralandmechanicalcharacterizationofastainlesssteelwiremeshreinforcedalmatrixcomposite
AT filippoberto microstructuralandmechanicalcharacterizationofastainlesssteelwiremeshreinforcedalmatrixcomposite
_version_ 1724364866765979648