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Determination of true stress-strain curve of type 304 and 316 stainless steels using a typical tensile test and finite element analysis

机译:使用典型拉伸试验和有限元分析测定304型和316不锈钢的真正应力 - 应变曲线

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Knowing a material’s true stress-strain curve is essential for performing a nonlinear finite element analysis to solve an elastoplastic problem. This study presents a simple methodology to determine the true stress-strain curve of type 304 and 316 austenitic stainless steels in the full range of strain from a typical tensile test. Before necking, the true stress and strain values are directly converted from engineering stress and strain data, respectively. After necking, a true stress-strain equation is determined by iteratively conducting finite element analysis using three pieces of information at the necking and the fracture points. The Hockett-Sherby equation is proposed as an optimal stress-strain model in a non-uniform deformation region. The application to the stainless steel under different temperatures and loading conditions verifies that the strain hardening behavior of the material is adequately described by the determined equation, and the estimated engineering stress-strain curves are in good agreement with those of experiments. The presented method is intrinsically simple to use and reduces iterations because it does not require much experimental effort and adopts the approach of determining the stress-strain equation instead of correcting the individual stress at each strain point.
机译:了解材料的真正应力 - 应变曲线对于执行非线性有限元分析来解决弹性塑性问题是必不可少的。该研究提出了一种简单的方法,可以从典型的拉伸试验确定在全系列菌株中的304和316型奥氏体不锈钢的真正应力 - 应变曲线。在缩颈之前,分别从工程应力和应变数据直接转换真正的应力和应变值。在缩颈之后,通过在颈缩和裂缝点的三个信息迭代地进行有限元分析来确定真正的应力 - 应变方程。在非均匀变形区域中提出了Hockett-Sherby方程作为最佳应力 - 应变模型。在不同温度和装载条件下施加到不锈钢和装载条件下的施加验证了材料的应变硬化行为通过所确定的等式得到充分描述,估计的工程应力 - 应变曲线与实验的符合良好。所提出的方法是本质上的使用和减少迭代,因为它不需要多大的实验努力并采用确定应力 - 应变方程的方法而不是校正每个应变点处的各个应力。

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