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首页> 外文期刊>Journal of Materials Research and Technology >Deformation behavior and anisotropic response of 2060 Al-Cu-Li alloy: experimental investigation and computational homogenization-based crystal plasticity modeling
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Deformation behavior and anisotropic response of 2060 Al-Cu-Li alloy: experimental investigation and computational homogenization-based crystal plasticity modeling

机译:2060 Al-Cu-Li合金的变形行为和各向异性响应:实验研究和基于计算均质化的晶体塑性建模

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摘要

Since AA2060-T8 was launched the past few years, it was crucial to understand the deformation behavior and to establish a multi-scale model that can link the microstructural state of this alloy with its mechanical behavior. Thus, a computational homogenization-based crystal plasticity modeling was proposed to predict the deformation behavior and capture the anisotropic response of AA2060-T8 at different deformation conditions. Uniaxial tensile tests were accomplished at room temperature and strain rates of 0.001 and 0.1s?1using samples with different fiber orientations to experimentally investigate the deformation behavior and anisotropic response of AA2060-T8. Thereafter, to clarify the details of the in-grain deformation features, a representative volume element was established to describe the real microstructure of AA2060-T8 in which each grain was discretized using many finite elements. Afterwards, a dislocation density-based crystal plasticity model was developed to describe the behavior of grains and simulate the plastic deformation of AA2060-T8. The material parameters utilized in the crystal plasticity model was determined from the stress–strain curves of the samples tested at loading direction of 30° with respect to rolling direction and strain rate of 0.001s?1. Additionally, a periodic boundary condition was modified to consider both geometrical and deformation induced anisotropy. The achieved results from the proposed computational homogenization method are in remarkable agreement with that obtained from experimental work. This means that the proposed computational homogenization method is able to predict the deformation behavior and capture the anisotropic response of AA2060-T8 at various deformation conditions.
机译:自从AA2060-T8投放市场以来,至关重要的是要了解其变形行为并建立一个多尺度模型,以将该合金的微观结构状态与其力学行为联系起来。因此,提出了一种基于计算均质化的晶体塑性模型,以预测变形行为并捕获AA2060-T8在不同变形条件下的各向异性响应。使用不同纤维取向的样品在室温和0.001和0.1s?1的应变率下完成了单轴拉伸试验,以实验研究AA2060-T8的变形行为和各向异性响应。此后,为了阐明晶粒内变形特征的细节,建立了一个具有代表性的体积元来描述AA2060-T8的真实微观结构,其中使用许多有限元离散化了每个晶粒。之后,建立了基于位错密度的晶体可塑性模型来描述晶粒的行为并模拟AA2060-T8的塑性变形。晶体可塑性模型中使用的材料参数是根据试样在30°载荷方向相对于轧制方向和0.001s?1的应力-应变曲线确定的。此外,修改了周期性边界条件,以考虑几何和变形引起的各向异性。拟议的计算机均质化方法所获得的结果与从实验工作中获得的结果显着一致。这意味着所提出的计算均质化方法能够预测变形行为并捕获AA2060-T8在各种变形条件下的各向异性响应。

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