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An experimental-numerical method to determine the work-hardening of anisotropic ductile materials at large strains

机译:确定大应变各向异性延性材料工作硬化的实验数值方法

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The determination of work-hardening for ductile materials at large strains is difficult to perform in the framework of usual tensile tests because of the geometrical instability and necking in the specimen at relatively low strains. In this study, we propose a combination of experimental and numerical techniques to overcome this difficulty. Extruded aluminium alloys are used as a case since they exhibit marked plastic anisotropy. In the experiments, the minimum diameters of the axisymmetric tensile specimen in two normal directions are measured at high frequency by a laser gauge in the necking area together with the corresponding force, and the true stress-strain curve is found. The anisotropy of the material is determined from its crystallographic texture using the crystal plasticity theory. This data is used to represent the specimen by a 3D finite element model with phenomenological anisotropic plasticity. The experimental true stress-strain curve is then used as a target curve in an optimisation procedure for calibrating the hardening parameters of the material model. As a result, the equivalent stress-strain curve of the material up to fracture is obtained.
机译:在较大的应变下很难确定韧性材料的加工硬化,因为在相对较低的应变下,样品的几何形状不稳定且颈缩,因此很难进行。在这项研究中,我们提出了实验和数值技术的组合来克服这一困难。由于挤压铝合金表现出明显的塑性各向异性,因此被用作外壳。在实验中,通过激光测量仪在颈缩区域以高频方式测量轴对称拉伸试样在两个法线方向上的最小直径以及相应的力,从而找到了真实的应力-应变曲线。使用晶体可塑性理论根据材料的晶体织构确定材料的各向异性。该数据用于通过具有现象学各向异性可塑性的3D有限元模型表示样品。然后,将实验的真实应力-应变曲线用作优化程序中的目标曲线,以校准材料模型的硬化参数。结果,获得了直至断裂的材料的等效应力-应变曲线。

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