...
首页> 外文期刊>International Journal of Plasticity >Model for description of nonlinear unloading-reloading stress-strain response with special reference to plastic-strain dependent chord modulus
【24h】

Model for description of nonlinear unloading-reloading stress-strain response with special reference to plastic-strain dependent chord modulus

机译:用于非线性卸载重新加载应力 - 应变响应的模型,特别参考塑性应变依赖性弦模量

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

To describe the nonlinear stress-strain response in the unloading-reloading process, a model was proposed for the variation of the elastic modulus during the process. This model is directly associated with the widely used equation for the plastic-strain dependent chord modulus, and no additional material parameters are needed for modeling. In this model, nonlinearly changing elastic modulus is explicitly determined from the current stress state, instead of using an accumulated-strain measure. Therefore, it is robust against the numerical noise (e.g., stress oscillation) in computation. Based on the same elastic modulus model, two types of calculation models were constructed, namely, a micro-plasticity model and nonlinear-elasticity model. From the numerical simulations of the non-proportional unloading-reloading processes, it was found that the stress-strain responses calculated by the two models were very similar to each other. The model was validated by comparing the calculated stress-strain results with the corresponding experimental observations on a DP980 advanced high-strength steel sheet (AHSS). The influence of the nonlinear unloading behavior on the springback prediction was discussed by performing two cases of springback simulations (a uniform bending-unbending and a hat-shaped drawbending) on two types of AHSSs (dual-phase DP980 and precipitation strengthen 780 R), by using several types of elastic modulus models. The best choice for springback simulation is to use the nonlinear elastic model to describe the realistic stress-strain responses in the yield surface, along with an appropriate kinematic hardening model of plasticity to express smooth elastic-plastic transition behavior. In comparison with the springback calculation by the nonlinear model, a certain amount of errors were found when using the plastic-strain dependent linear models, however, they were not very large. Thus the second best option in springback simulation would be to use the chord modulus model because of its simple modeling and high computation efficiency.
机译:为了描述卸载重载过程中的非线性应力 - 应变响应,提出了一种模型,用于在该过程中的弹性模量的变化。该模型与塑性应变依赖性弦模量模量的广泛使用的方程直接相关,并且不需要额外的材料参数来建模。在该模型中,从电流应力状态明确地确定非线性改变的弹性模量,而不是使用累积的应变度量。因此,对计算中的数值噪声(例如,应力振荡)具有稳健。基于相同的弹性模量模型,构造了两种类型的计算模型,即微塑性模型和非线性弹性模型。根据非比例卸载重载过程的数值模拟,发现由两种模型计算的应力 - 应变响应彼此非常相似。通过将计算的应力 - 应变结果与DP980先进的高强度钢板(AHSS)进行相应的实验观察,通过比较计算的应力应变结果进行验证。通过在两种类型的AHSS(双相DP980和降水增强780 r)上进行两种回弹模拟(均匀弯曲 - 不平衡和帽形吊带),讨论了非线性卸载行为对回弹预测的影响通过使用几种类型的弹性模量模型。回弹仿真的最佳选择是使用非线性弹性模型来描述屈服表面中的现实应力 - 应变响应,以及适当的可塑性的运动硬化模型,以表达光度的弹性塑性过渡行为。与非线性模型的回弹计算相比,使用塑性应变依赖性线性模型时发现一定量的误差,但它们不是很大。因此,由于其简单的建模和高计算效率,回弹仿真中的第二个最佳选择是使用弦模量模型。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号