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Investigation of the effects of twinning on the mechanical response of poly crystal magnesium

机译:孪生对多晶硅镁机械响应的影响研究

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Hexagonal close-packed (HCP) metals show highly anisotropic mechanical responses due to twinning, slip and the interaction among various slip and twin systems. Each HCP metal shows different sets of activated slip and twin systems. The interaction among slip and twin systems causes highly nonlinear and rapidly changing hardening behaviors in the critical resolved shear stress (CRSS) of each slip/twin system. To accurately understand the anisotropic mechanical response of HCP metals, both single-crystal and polycrystal tests must be performed. The interaction among different slip and twin systems shows different behaviors in the single-crystal and polycrystal settings since the interacting environments are different. The fitting process of the single crystal and polycrystal stress-strain data involves a series of trials and errors to find the correct interaction patterns among various slip and twin systems. The fitting procedures used in previous researches take a lot of times of trials and errors and are not guided by any physical property. Therefore, this study employs a recently proposed new fitting procedure, which is based on a physical property, the saturation strength of the material, to fit magnesium experimental data more efficiently with a less number of trials and errors. Compared to the slip process, twinning is computationally more difficult to take into account due to the directionality of the twin process, i.e., twinning occurs only in one direction, not in the opposite direction unlike the slip process. The rapidly changing highly nonlinear interaction hardening behaviors among various slip and twin systems are computationally challenging. Both of the above computational difficulties require a more robust and accurate numerical scheme than previously used ones to obtain accurate representations of experimental data. Therefore, this study proposes a more accurate and robust numerical scheme for the hardening strengths (CRSS) of twin/slip systems and interaction hardening. The newly proposed scheme is based upon implicit time integration, which enhances accuracy and stability. Using the proposed fitting procedure and the implicit integration scheme for hardening strength (CRSS) and interaction hardening, the experimental stress-strain data of polycrystal magnesium shown in Kelley and Hosford (The plastic deformation of magnesium. Technical report, 1967, Trans Metall Soc AIME 242:5-13, 1968) are successfully reproduced.
机译:六角形紧密包装(HCP)金属显示出由于孪生,滑动和各种滑动和双系统之间的相互作用而具有高度各向异性的机械响应。每个HCP金属显示不同的活性滑动和双系统。滑动和双系统之间的相互作用在每个滑移/双系统的临界分离的剪切应力(CRS)中产生高度非线性和快速变化的硬化行为。为了准确地理解HCP金属的各向异性机械响应,必须进行单晶和多晶试验。由于交互环境不同,不同滑动和双系统之间的相互作用在单晶和多晶体环境中显示出不同的行为。单晶和多晶应变数据的拟合过程涉及一系列试验和误差,以找到各种滑动和双系统之间的正确相互作用模式。以前研究中使用的拟合程序需要大量的试验和错误,并且不会被任何物理性质引导。因此,本研究采用最近提出的新配件程序,该程序基于物理性质,材料的饱和强度,以较少数量的试验和错误更有效地拟合镁实验数据。与滑动过程相比,由于双工艺的方向性,孪晶是在计算上更难以考虑的,即,孪晶仅在一个方向上发生,而不是与滑动过程不同。各种滑动和双系统之间的快速改变高度非线性相互作用的强化行为在计算上具有挑战性。上述两者的计算困难都需要比以前使用的更稳健和准确的数值方案,以获得准确的实验数据表示。因此,该研究提出了一种更准确和坚固的数值方案,用于双/滑动系统的硬化强度(CRS)和相互作用硬化。新提出的方案基于隐含的时间集成,这提高了准确性和稳定性。利用所提出的拟合程序和用于硬化强度(CRSS)和相互作用硬化的隐式整合方案,Kelley和Hosford中显示的多晶镁的实验应力 - 应变数据(镁的塑性变形。1967年技术报告,Trans Metall Soc AIME 242:5-13,1968)成功转载。

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