In-Situ Joining of Combustion Synthesized Ni3Al Intermetallic Compounds with AZ91D Mg Alloy
We focused on the surface reinforcement of ligth weight casting alloys with Ni3Al intermetallic compounds by in-situ combustion reaction to improve the surface properties of nonferrous casting components. In the present work, by setting the mixture of elemental Ni and Al powders in a casting mold, t...
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Veröffentlicht in: | Materials science forum 2007-05, Vol.544-545, p.383-386 |
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Sprache: | eng |
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Zusammenfassung: | We focused on the surface reinforcement of ligth weight casting alloys with Ni3Al
intermetallic compounds by in-situ combustion reaction to improve the surface properties of nonferrous
casting components. In the present work, by setting the mixture of elemental Ni and Al
powders in a casting mold, the powder mixture reacted to form Ni3Al intermetallic compound by
SHS reaction ignited by the heat of molten AZ91D Mg alloy and simultaneously bonded with the
Mg casting alloy. The AZ91D Mg alloy bonded with the Ni3Al intermetallic compound was
sectioned and observed by optical microscopy and scanning electron microscopy(SEM). The
chemical composition of intermetallic compounds and diffusion layer formed around bonding
interface were identified by energy dispersive spectroscopy(EDS), X-ray diffraction analysis(XRD)
and electron probe micro analyzer(EPMA).
The main intermetallic compound was Ni3Al phase and a little Ni2Al3 intermetallic compound
was formed from the Ni and Al powder mixtures. Residual pores were observed in the synthesized
intermetallic compound. The AZ91D Mg alloy and Ni3Al intermetallic compound were bonded
very soundly by the interdiffusion of Mg, Ni and Al elements, but some cracks were observed
around the bonded interface on the interdiffusion layer. The diffusion length formed between
AZ91D Mg alloy and Ni3Al was different depending on the diffusivity of Ni and Al elements into
the molten Mg alloy. Ni was more deeply diffused into the Mg alloy than Al. The diffusion layer
was about 200m thickness and various phases were formed by the interdiffusion of Mg, Ni and Al.
From this challenge we have successfully produced a coating layer based on nickel aluminide on
ligth weight Mg alloy using molten metal heat without any additional process. On the basis of the
results obtained, it is concluded that near-net shaped nickel aluminide coating layer can be formed
using this unique process. |
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ISSN: | 0255-5476 1662-9752 1662-9752 |
DOI: | 10.4028/www.scientific.net/MSF.544-545.383 |