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Influence of Layer Thickness on Deformation Twinning in Mg/Nb Laminates

机译:层厚度对Mg / Nb层压板变形孪生的影响

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Mg-based nanolayered composites can achieve remarkably high specific-strengths due to a combination of a high density of bimetal interfaces and the light-weight constituent Mg phase. However, their applicability to load-bearing applications is hindered by limited forma-bility and the anisotropic effects of deformation twinning. Understanding the microstructural and interface properties that control twinning is crucial for the design of multilayered composites. In this study, we employ an elasto-viscoplastic fast-Fourier-transform (EVP-FFT) crystal plasticity micromechanics model to examine the effect of Mg layer thickness on the growth propensity of {1012}-tensile twins that span the entire Mg layer. The analysis shows that a critical Mg layer thickness exists, below which, twin growth becomes substantially harder. This critical thickness is related to the backstresses that develop along the twin boundary in the anti-twinning direction. These backstresses result from the plastic reaction of the adjacent Nb layers to the twin shear where the Mg twin lamella intersects the Mg/Nb interfaces. Below the critical layer thickness, the strong backstresses from both ends of the twin strongly interact. They increase in intensity as the layer thickness reduces. Concomitantly, increasing amounts of external loading are required to overcome the backstress and make twin growth feasible.
机译:由于具有高密度的双金属界面和轻重成分Mg相,Mg基纳米复合材料可以实现显着的高比强度。然而,它们对承载应用的适用性受到有限的Forma-Bility的阻碍和变形Twinning的各向异性效应。了解控制孪晶的微观结构和界面特性对于多层复合材料设计至关重要。在这项研究中,我们采用ELASTO-VISCOPLACT快速傅里叶变换(EVP-FFT)晶体塑性微机械模型,以检查MG层厚度对跨越整个MG层的{1012}肌腱双胞胎的生长倾向的影响。该分析表明,存在临界Mg层厚度,下降,双生长变得基本上更稠密。这种临界厚度与沿着抗孪晶方向上的双边界发育的后背部有关。这些背带由相邻的Nb层的塑料反应导致双剪切,其中Mg双薄片与Mg / Nb界面相交。低于临界层厚度,双翼两端的强背面强烈相互作用。随着层厚度减小,它们的强度增加。同时,需要越来越多的外部装载来克服背面,使双胞胎增长可行。

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