Abstract
The effect of compound fields of ultrasonic vibration and applied pressure (UV+AP) on three-dimensional (3D) microstructure and tensile properties of recycled Al-Cu-Mn-Fe-Si alloys was systematically studied using conventional two-dimensional (2D) microscopy, synchrotron X-ray tomography, and tensile test. The properties of UV+AP treated alloys with the pouring temperature of 740, 710 and 680 °C were compared when those alloys achieved after gravity casting. After UV+AP treatment, the alloy with pouring temperature of 710 °C show the smallest grain size. Also, the sizes of Fe-rich phases and Al2Cu are greatly reduced and their 3D morphologies are compacted. The mechanical properties of UV+AP treated alloys are relatively higher than those measured for gravity cast equivalents. This improvement can be explained by the synergistic effect of acoustic cavitation, acoustic streaming, and force-feeding, which resulted in the dendrite fragmentation, uniform solute distribution, and microstructural refinement. The Orowan strengthening and solution strengthening were identified as the main strengthening mechanisms.
Subject
General Materials Science
Reference43 articles.
1. Precipitation strengthening of aluminum alloys by room-temperature cyclic plasticity
2. Aluminum Alloy Castings: Properties, Processes, and Applications;Kaufman,2004
3. Iron in Aluminum Alloys: Impurity and Alloying Element;Belov,2002
4. Aluminum Recycling and Processing for Energy Conservation and Sustainability;Green,2007
5. Removal of Iron From Aluminum: A Review
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