Using polycrystal plasticity modeling to determine the effects of grain size and solid solution additions on individual deformation mechanisms in cast Mg alloys. Raeisinia, B. & Agnew, S. R. Scripta Materialia, 63(7):731–736, October, 2010.
Using polycrystal plasticity modeling to determine the effects of grain size and solid solution additions on individual deformation mechanisms in cast Mg alloys [link]Paper  doi  abstract   bibtex   
The tensile and compressive yielding of cast Mg–Zn alloys, with varying grain sizes and compositions ranging from 0 to 2.3 at.% Zn, are simulated using a polycrystal plasticity model. The results are used to determine the grain size and composition dependences of the critical resolved shear stresses (CRSS) of basal slip and tensile twinning.
@article{raeisinia_using_2010,
	series = {Viewpoint set no. 47 {Magnesium} {Alloy} {Science} and {Technology}},
	title = {Using polycrystal plasticity modeling to determine the effects of grain size and solid solution additions on individual deformation mechanisms in cast {Mg} alloys},
	volume = {63},
	issn = {1359-6462},
	url = {http://www.sciencedirect.com/science/article/pii/S1359646210002083},
	doi = {10.1016/j.scriptamat.2010.03.054},
	abstract = {The tensile and compressive yielding of cast Mg–Zn alloys, with varying grain sizes and compositions ranging from 0 to 2.3 at.\% Zn, are simulated using a polycrystal plasticity model. The results are used to determine the grain size and composition dependences of the critical resolved shear stresses (CRSS) of basal slip and tensile twinning.},
	number = {7},
	urldate = {2016-02-26},
	journal = {Scripta Materialia},
	author = {Raeisinia, Babak and Agnew, Sean R.},
	month = oct,
	year = {2010},
	keywords = {crystal plasticity, Grain size, Hall–Petch, Solid solution strengthening},
	pages = {731--736},
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}

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