Acta Metallurgica Sinica (English Letters) ›› 2015, Vol. 28 ›› Issue (4): 444-448.DOI: 10.1007/s40195-015-0215-y
• Orginal Article • Previous Articles Next Articles
A. K. Chaubey(), B. B. Jha, B. K. Mishra
Received:
2014-07-21
Revised:
2014-08-27
Online:
2015-02-04
Published:
2015-07-23
A. K. Chaubey, B. B. Jha, B. K. Mishra. Microstructure and Mechanical Properties of Mg-7.4% Al Alloy Matrix Composites Reinforced by Nanocrystalline Al-Ca Intermetallic Particles[J]. Acta Metallurgica Sinica (English Letters), 2015, 28(4): 444-448.
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Fig. 1 a XRD patterns for the as milled and annealed reinforcement and composites with 20 and 40 vol% of Al35Ca65 powder; b DSC curve of the 200 h milled reinforcement powders (heating rate is 20 K/min)
Fig. 3 SEM micrographs for the consolidated Mg-7.4% Al alloy a, consolidated composites reinforced with 20 vol% b, 40 vol% c, 60 vol% d Al3Ca8 particles
Fig. 4 Experimental (square) and theoretical (circle) densities of the consolidated samples as a function of the volume fraction of Al3Ca8 reinforcement
Fig. 5 a Room temperature compression true stress-true strain curves for the consolidated unreinforced Mg-7.4 Al matrix and composites with 20 vol.% (V = 20), 40 vol.% (V = 40) and 60 vol.% (V = 60) of nanostructured Al3Ca8 particles, b corresponding data of mechanical properties
Fig. 6 Specific strength of the composites as a function of the fraction of intermetallic reinforcement. For comparison purposes, the values for Mg-based MMCs reinforced with fly ash [3] and TiC [4] evaluated by compression tests are also reported
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