mechanical properties of hot-pressed al-4.5 wt. % cu/wc composite
Authors
abstract
in this study, the elemental powders of aluminum and copper were initially subjected to mechanical alloying using an attrition ball mill under argon atmosphere to produce an al-4.5 wt% cu powder alloy. the wc nanoparticles were then added to the powder alloy and milled in a planetary ball mill to explore the role of the wc nanoparticles on the mechanical properties of the fabricated composite powder. the experimental results revealed that a solid solution of al-cu could be formed after ma and a good dispersion of the wc nanoparticles in the aluminum matrix was obtained as characterized using x-ray diffraction and scanning electron microscopy, respectively. the results of hardness and compression tests of the hot pressed composites indicated that the ma followed by the hot-press processes was successful to fabricate an alloy and a metal matrix composite with considerable mechanical properties. however, a decreasing trend in the hardness and strength of the composites with the wc contents of more than 5wt% was observed. the maximum values of 260 hv and 575 mpa were obtained for a composite containing 5 wt% of nano ceramic particles.
similar resources
Mechanical properties of hot-pressed Al-4.5 wt. % Cu/WC composite
In this study, the elemental powders of aluminum and copper were initially subjected to mechanical alloying using an attrition ball mill under argon atmosphere to produce an Al-4.5 wt% Cu powder alloy. The WC nanoparticles were then added to the powder alloy and milled in a planetary ball mill to explore the role of the WC nanoparticles on the mechanical properties of the fabricated composite p...
full textThe Structural and Mechanical Properties of Al-2.5%wt. B4C Met-al Matrix Nano-composite Fabricated by the Mechanical Alloying
In this study, aluminum (Al) matrix reinforced with micro-particles (30 µm) and nano-particles (50 nm) boron carbide (B4C) were used to prepare Al-2.5%wt., B4C nano-composite and micro-composite, respectively, using mechanical alloying method. The mixed powders were mechanically milled at 5, 10, 15 and 20 hrs. The XRD results indicated that the crystallite sizes of both the micro-composite and ...
full textthe structural and mechanical properties of al-2.5%wt. b4c met-al matrix nano-composite fabricated by the mechanical alloying
in this study, aluminum (al) matrix reinforced with micro-particles (30 µm) and nano-particles (50 nm) boron carbide (b4c) were used to prepare al-2.5%wt., b4c nano-composite and micro-composite, respectively, using mechanical alloying method. the mixed powders were mechanically milled at 5, 10, 15 and 20 hrs. the xrd results indicated that the crystallite sizes of both the micro-composite and ...
full textHydrogen Desorption Properties of Nanocrystalline MgH2-10 wt.% ZrB2 Composite Prepared by Mechanical Alloying
Storage of hydrogen is one of the key challenges in developing hydrogen economy. Magnesium hydride (MgH2) is an attractive candidate for solid-state hydrogen storage for on-board applications. In this study, 10 wt.% ZrB2 was co-milled with magnesium hydride at different milling times to produce nanocrystalline composite powder. The effect of milling time and additive on the hydrogen desorption...
full textElectron microscopy characterization of hot - pressed Al substituted
Hot-pressing was used to prepare a dense (97% relative density) cubic Al substituted Li7La3Zr2O12 material at temperatures lower than typically used for solid-state and/or liquid phase sintering. Electron microscopy analysis revealed equiaxed grains, grain boundaries, and triple junctions free of amorphous and second phases and no Al segregation at grain boundaries. These results suggest that A...
full textInvestigation of the Physical and Mechanical Properties of Hot-Pressed Boron Nitride/Oxide Ceramic Composites
Billets of hexagonal boron nitride powders (h-BN) were hot-pressed, varying the alignment of the platelike particles and the amount of oxide additives. Increasing either alignment of individual grains or the amount of additives was shown to increase flexural strength, to approximately 120 MPa at ambient temperatures. h-BN was shown to deflect cracks initially propagating normal to its basal pla...
full textMy Resources
Save resource for easier access later
Journal title:
journal of ultrafine grained and nanostructured materialsPublisher: university of tehran college of engineering
ISSN 2423-6845
volume 47
issue 2 2014
Hosted on Doprax cloud platform doprax.com
copyright © 2015-2023