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Size-effects in textural strengthening of hierarchical magnesium nano-composites

机译:层状镁纳米复合材料的结构强化中的尺寸效应

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In a recent work, we demonstrated the efficacy of a hierarchical Mg nano-composite concept where the reinforcement is itself a composite (Al+Al_2O_3) at a finer scale, referred to as level-I composite (Habibi et al., 2010 [1]). In this work, we systematically investigate the influence of the Al_2O_3 reinforcement size d_p and its overall volume fraction (v.f.) on the microstructural characteristics and the quasi-static tensile and compressive responses. We consider three different Al_2O_3 sizes with dilute f_p thereby giving different hierarchical configurations (H-configs). All H-configs exhibit enhanced tensile and compressive responses compared to pure Mg. The compressive strengthening is nearly independent of the hierarchical configuration. On the other hand, the level of strengthening in quasi-static tension varies with H-config. The average grain sizes in all the H-configs are found to be nearly the same and therefore, it does not account for the strength variation. Microstructural analysis indicates that the variation in the strengthening for H-configs arises from at least two sources: (a) level-I size, d_I, which shows a weak dependence on d_p, and (b) systematic dependence of the as-extruded textures on the level-I size and v.f. The hierarchical configurations exhibit stronger prismatic texture and weaker basal texture with decreasing size and increasing v.f. of the level-1 phase. The underlying mechanism is not clearly understood, but we suggest that for the micron/submicron sized d_p the level-I serves as a more effective sources for recrystallization compared to nanoscaled d_p, thereby producing weaker textures in the former compared to the latter.
机译:在最近的工作中,我们证明了分层Mg纳米复合材料概念的功效,其中增强材料本身是更精细的复合材料(Al + Al_2O_3),称为I级复合材料(Habibi et al。,2010 [1 ])。在这项工作中,我们系统地研究了Al_2O_3增强材料尺寸d_p及其总体积分数(v.f.)对微观结构特征以及准静态拉伸和压缩响应的影响。我们考虑三种不同的Al_2O_3尺寸,并稀释f_p,从而给出不同的层次结构(H-configs)。与纯Mg相比,所有H构型均表现出增强的拉伸和压缩响应。压缩加强几乎与分层结构无关。另一方面,准静态张力的增强水平随H-config的变化而变化。发现所有H-构型中的平均晶粒尺寸几乎相同,因此,它不考虑强度变化。微观结构分析表明,H-构型强化的变化至少源于两个方面:(a)I级大小d_I,它对d_p的依赖性很弱,以及(b)挤压纹理的系统依赖性在I级大小和vf层次结构显示出较大的棱柱形纹理和较弱的基础纹理,并且尺寸减小且v.f增大。 1级阶段。尚不清楚其基本机理,但我们建议对于微米/亚微米尺寸的d_p,与纳米级的d_p相比,I级可作为更有效的重结晶来源,因此与后者相比,前者的质地较弱。

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