首页> 外文期刊>Finite Elements in Analysis and Design >Sheet metal forming analysis using a large strain anisotropic multiplicative plasticity formulation, based on elastic correctors, which preserves the structure of the infinitesimal theory
【24h】

Sheet metal forming analysis using a large strain anisotropic multiplicative plasticity formulation, based on elastic correctors, which preserves the structure of the infinitesimal theory

机译:基于弹性校正的大应变各向异性倍增可塑性配方的钣金成型分析,这保留了无限近似理论的结构

获取原文
获取原文并翻译 | 示例
       

摘要

Sheet metal forming is a very important process in industry to create a wide variety of goods. The analysis of local ductility and residual stresses is important both to assess the viability of the manufacturing process and the reliability of the resulting elements in service. An example is crash-worthiness, where remaining ductility and residual stresses govern the safety of the overall structure during the impact.A main ingredient of finite element simulations for sheet metal forming in industry is a robust continuum-based computational algorithm for large strain elastoplasticity which includes both elastic and plastic anisotropy, as well as mixed hardening. The theory should use exactly-integrable (conservative) elastic and hardening behaviors based on physically motivated proper state variables and, if possible, result in a simple integration algorithm. In this work we implement a novel large strain formulation for anisotropic hyperelasto-plasticity in a user subroutine of the commercial program ADINA to perform sheet metal forming simulations, testing the robustness and suitability of the model for industry, as well as its accuracy. The formulation is based on a new approach to the treatment of large strain kinematics, using logarithmic elastic corrector rates instead of plastic rates. Furthermore, kinematic hardening is formulated without an explicit backstress. We compare and discuss the results with those in the literature which use alternative frameworks.
机译:钣金成型是工业中的一个非常重要的工艺,以创造各种各样的商品。对局部延展性和残余应力的分析对于评估制造工艺的可行性以及所得的服务元素的可靠性,重要的分析是重要的。一个例子是崩溃的价值,其中剩余的延展性和残余应力控制在撞击过程中整体结构的安全。工业中金属板形成的有限元模拟的主要成分是一种稳健的基于连续的基于菌株弹塑性的计算算法包括弹性和塑料各向异性,以及混合硬化。该理论应基于物理动机适当的适当状态变量使用完全一体化的(保守的)弹性和硬化行为,如果可能的话,导致简单的集成算法。在这项工作中,我们在商业计划Adina的用户子程序中实施了一种新的大型菌株用于各向异性的超细塑性可塑性,以进行钣金成型模拟,测试工业模型的鲁棒性和适合性,以及其准确性。该配方基于使用对数弹性校正器速率而不是塑料率治疗大型菌株运动学的新方法。此外,在没有明确的背阵的情况下配制运动硬化。我们与使用替代框架的文献中的结果进行比较和讨论结果。

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