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Evaluation of the stress-strain curve of metallic materials by spherical indentation

机译:用球形压痕法评估金属材料的应力-应变曲线

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摘要

A method for deducing the stress-strain uniaxial properties of metallic materials from instrumented spherical indentation is presented along with an experimental verification. An extensive finite element parametric analysis of the spherical indentation was performed in order to generate a database of load vs. depth of penetration curves for classes of materials selected in order to represent the metals commonly employed in structural applications. The stress-strain curves of the materials were represented with three parameters: the Young modulus for the elastic regime, the stress of proportionality limit and the strain-hardening coefficient for the elastic-plastic regime. The indentation curves simulated by the finite element analyses were fitted in order to obtain a continuous function which can produce accurate load vs. depth curves for any combination of the constitutive elastic-plastic parameters. On the basis of this continuous function, an optimization algorithm was then employed to deduce the material elasticplastic parameters and the related stress-strain curve when the measured load vs. depth curve is available by all instrumented spherical indentation test. The proposed method was verified by comparing the predicted stress-strain curves with those directly measured for several metallic alloys having different mechanical properties. This result confirms the possibility to deduce the complete stress-strain curve of a metal alloy with good accuracy by a properly conducted instrumented spherical indentation test and a suitable interpretation technique of the measured quantities. (c) 2005 Elsevier Ltd. All rights reserved.
机译:提出了一种通过仪器化的球形压痕推导金属材料的应力-应变单轴性能的方法,并进行了实验验证。对球形压痕进行了广泛的有限元参数分析,以生成所选材料类别的载荷与穿透深度曲线的数据库,以代表结构应用中常用的金属。材料的应力-应变曲线用三个参数表示:弹性态的杨氏模量,比例极限应力和弹塑性态的应变硬化系数。拟合由有限元分析模拟的压痕曲线以获得连续函数,该连续函数可以针对本构弹塑性参数的任何组合生成精确的载荷与深度的曲线。基于该连续函数,当通过所有仪器化的球形压痕测试可获得测得的载荷与深度的曲线时,然后采用优化算法来推导材料的弹塑性参数和相关的应力-应变曲线。通过将预测的应力-应变曲线与直接测量的几种具有不同机械性能的金属合金的应力-应变曲线进行比较,验证了所提出的方法。该结果证实了通过适当地进行仪器化的球形压痕测试和对测量量的适当解释技术来以良好的精度推导金属合金的完整应力-应变曲线的可能性。 (c)2005 Elsevier Ltd.保留所有权利。

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