2013
DOI: 10.1016/j.msea.2012.11.032
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Effect of Li addition on the mechanical behavior and texture of the as-extruded AZ31 magnesium alloy

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Cited by 101 publications
(29 citation statements)
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“…The high strains could inhibit the growth of the grains. So the size and volume fraction of dynamic recrystallizations of fined grains are inversely proportional to the accumulation strains [27,28].…”
Section: Optical Microstructuresmentioning
confidence: 99%
“…The high strains could inhibit the growth of the grains. So the size and volume fraction of dynamic recrystallizations of fined grains are inversely proportional to the accumulation strains [27,28].…”
Section: Optical Microstructuresmentioning
confidence: 99%
“…4. Grain boundaries in the IPF maps were indicated by various lines depending upon the grain-to-grain misorientation angles: gray for 2 o <θ<15 o (low-angle boundaries, LABs) and black for 15 o <θ<90 o (high-angle boundaries, HABs) 26 . It can be seen that a higher density of low angle misorientations (10 o~4 0 o ) was in as-received sheets, while a higher density of high angle misorientations (30 o~9 0 o ) was in MPBA sheets.…”
Section: Resultsmentioning
confidence: 99%
“…Above 10.3 wt.%, the Li microstructure in all Mg–Li alloys is composed of a β(Li) phase [ 10 ]. An increase in the Li content causes a reduction in the lattice constant ratio (c/a = 1.624) of magnesium [ 11 ], as shown by Li et al [ 12 ] with the analysis of an Mg– x Li–3 Al–Zn alloy, where the axial ratio c/a could be reduced from 1.624 to 1.608 when the Li fraction increased from 1 wt.% to 5 wt.%. This situation causes a reduction in critical resolved shear stresses (CRSSs) of slip systems and more slip systems being activated at ambient temperature, thus enhancing the Mg–Li deformation capacity in comparison with other Mg alloys [ 13 ].…”
Section: Introductionmentioning
confidence: 99%