Phase stability in a powder-processed Al–Mn–Ce alloy
There has been considerable interest in Al-rich Al–Mn–Ce alloys due to the variety of crystalline and quasi-crystalline metastable phases that can be formed. Here we report a study of the effects of heat treatment on an Al–5Mn–2Ce (at.%) alloy processed by gas atomization and consolidated by warm ex...
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Veröffentlicht in: | Journal of materials science 2014-05, Vol.49 (10), p.3742-3754 |
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Sprache: | eng |
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Zusammenfassung: | There has been considerable interest in Al-rich Al–Mn–Ce alloys due to the variety of crystalline and quasi-crystalline metastable phases that can be formed. Here we report a study of the effects of heat treatment on an Al–5Mn–2Ce (at.%) alloy processed by gas atomization and consolidated by warm extrusion. Characterization using X-ray diffraction and electron microscopy showed that the powder microstructure consists mainly of an amorphous phase, FCC Al, and a previously unreported phase, Al
20
Mn
2
Ce. The extrudate is fully devitrified and contains a mixture of FCC Al, Al
20
Mn
2
Ce, and Al
6
Mn, with a small amount of Al
12
Mn and Al
11
Ce
3
. Upon heat-treatment at up to 450 °C, the Al
20
Mn
2
Ce and Al
6
Mn phases decompose to give a hard stable phase mixture with 72–73 % Al
12
Mn plus 13–14 % each of Al
11
Ce
3
and FCC Al. Heat treatments at 500 °C give a much softer phase mixture consisting of 60 % FCC Al, 22 % of an unknown Al
3
(Mn,Ce) phase, 9 % Al
12
Mn, 8 % Al
6
Mn, and 1 % Al
11
Ce
3
. The formation of large volume fractions of Al
12
Mn for heat-treatments at up to 450 °C suggests that the presence of Ce may stabilize this phase, and that more dilute Al–Mn–Ce compositions could form the basis for new high-strength, low-density Al-based alloys with enhanced elevated temperature properties. |
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ISSN: | 0022-2461 1573-4803 |
DOI: | 10.1007/s10853-014-8086-6 |