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Explicit and Implicit Springback Simulation In Sheet Metal Forming Using Fully Coupled Ductile Damage And Distortional Hardening Model

机译:用完全耦合的延展性损伤和扭曲硬化模型的金属板形成中的显式和隐含回弹仿真

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摘要

The springback is an important phenomenon which accompanies the forming of metallic sheets especially for high strength materials. A quantitative prediction of springback becomes very important for newly developed material with high mechanical characteristics. In this work, a numerical methodology is developed to quantify this undesirable phenomenon. This methodoly is based on the use of both explicit and implicit finite element solvers of Abaqus?. The most important ingredient of this methodology consists on the use of highly predictive mechanical model. A thermodynamically-consistent, non-associative and fully anisotropic elastoplastic constitutive model strongly coupled with isotropic ductile damage and accounting for distortional hardening is then used. An algorithm for local integration of the complete set of the constitutive equations is developed. This algorithm considers the rotated frame formulation (RFF) to ensure the incremental objectivity of the model in the framework of finite strains. This algorithm is implemented in both explicit (Abaqus/Explicit?) and implicit (Abaqus/Standard?) solvers of Abaqus? through the users routine VUMAT and UMAT respectively. The implicit solver of Abaqus? has been used to study spingback as it is generally a quasi-static unloading. In order to compare the methods 'efficiency, the explicit method (Dynamic Relaxation Method) proposed by Rayleigh has been also used for springback prediction. The results obtained within U draw/bending benchmark are studied, discussed and compared with experimental results as reference. Finally, the purpose of this work is to evaluate the reliability of different methods predict efficiently springback in sheet metal forming.
机译:回弹是伴随着形成金属片的重要现象,特别是对于高强度材料。对于具有高机械特性的新开发的材料,回弹的定量预测变得非常重要。在这项工作中,开发了一种数值方法来量化这种不良现象。该方法是基于ABAQUS的明确和隐含的有限元求解器的使用基础该方法最重要的成分包括使用高度预测的机械模型。然后使用热力学 - 一致,非关联和完全各向异性的和完全各向异性的弹性塑料组成型模型,与各向同性延展性损伤和算用于扭曲硬化的算法。开发了一种用于本地集成的完整组成方程的算法。该算法考虑了旋转帧配方(RFF),以确保有限菌株框架中模型的增量客观性。该算法在显式(ABAQUS /显式?)和Abaqus的隐含(Abaqus /标准?)中实现?通过用户常规Vumat和Umat。 Abaqus的隐含求解器?已被用于研究Spingback,因为它通常是一种准静态卸载。为了比较方法的效率,瑞利提出的显式方法(动态松弛方法)也用于回弹预测。研究,与实验结果进行了研究,并将其讨论并将其讨论并将其讨论并将其讨论。最后,这项工作的目的是评估不同方法的可靠性预测金属板成形中的回弹。

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