Stress-Strain Response of Copper-Based Spring Materials under Forward and Reverse Deformations and Its Mathematical Description

Y. Hattori, K. Furukawa, F. Yoshida
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引用次数: 2

Abstract

The reliability of a connector depends on the contact force generated by the spring in the terminal of a connector. The springs are commonly formed by stamping from a strip of spring material. Therefore, the prediction of the force - displacement relation by the finite element method (FEM) is very important for the design of terminals. For simulation, an accurate model of stress-strain (s-s) responses of the materials is required. When the materials are deformed in the forward and then the reverse directions, almost all spring materials show different s-s responses between the two directions, due to the Bauschinger effect. This phenomenon makes simulation difficult because the s-s response depends on the prior deformation of the material. In this paper, the s-s response of copper-based materials, which were measured by tension and compression testing, will be presented. The mathematical description of experimental results will also be reported with the Yoshida-Uemori model, which is a constitutive model having high capability of describing the elastic and plastic behavior of cyclic deformation. The calculated s-s responses were in good agreement with the corresponding experimental results. Therefore, the use of this model for FE simulation would be recommended for a more accurate prediction of force-displacement relation of the spring.
正、反向变形下铜基弹簧材料的应力应变响应及其数学描述
连接器的可靠性取决于连接器端子中弹簧产生的接触力。弹簧通常是由一条弹簧材料冲压而成的。因此,利用有限元法预测力-位移关系对终端的设计具有重要意义。为了进行模拟,需要精确的材料应力-应变响应模型。当材料先正向再反向变形时,由于鲍辛格效应,几乎所有的弹簧材料在两个方向上都表现出不同的s-s响应。这种现象使模拟变得困难,因为s-s响应取决于材料的先验变形。本文将介绍通过拉伸和压缩试验测量的铜基材料的s-s响应。实验结果的数学描述也将采用Yoshida-Uemori模型,这是一种描述循环变形弹塑性行为能力很强的本构模型。计算得到的s-s响应与实验结果吻合较好。因此,建议使用该模型进行有限元模拟,以便更准确地预测弹簧的力-位移关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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