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Advances in Virtual Metal Forming Including the Ductile Damage Occurrence: Application to 3D Sheet Metal Deep Drawing

机译:虚拟金属成形技术的发展,包括延性破坏的发生:在3D钣金深冲压中的应用

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摘要

An advanced numerical methodology to simulate virtually any sheet or bulk metal forming including various kinds of initial and induced anisotropies fully coupled to the iso-tropic ductile damage is presented. First, the fully coupled anisotropic constitutive equations in the framework of continuum damage mechanics under large plastic deformation are presented. Special care is paid to the strong coupling between the main mechanical fields such as elastoplasticity, mixed nonlinear isotropic and kinematic hardenings, ductile isotropic damage, and contact with friction in the framework of nonassociative and non-normal formulation. The associated numerical aspects concerning both the local integration of the coupled constitutive equations as well as the (global) equilibrium integration schemes are presented. The local integration is outlined, thanks to the Newton iterative scheme applied to a reduced system of ordinary differential equations. For the global resolution of the equilibrium problem, the classical dynamic explicit (DE) scheme with an adaptive time step control is used. This fully coupled procedure is implemented into the general purpose finite element code for metal forming simulation, namely, ABAQUS/explicit. This gives a powerful numerical tool for virtual optimization of metal forming processes before their physical realization. This optimization with respect to the ductile damage occurrence can be made either to avoid the damage occurrence to have a nondamaged part as in forging, stamping, deep drawing, etc., or to favor the damage initiation and growth for some metal cutting processes as in blanking, guillotining, or machining by chip formation. Two 3D examples concerning the sheet metal forming are given in order to show the capability of the proposed methodology to predict the damage initiation and growth during metal forming processes.
机译:提出了一种先进的数值方法,可以模拟几乎所有的板材或块状金属成形,包括与各向同性延性损伤完全耦合的各种初始各向异性和诱导各向异性。首先,提出了在大塑性变形下连续损伤力学框架下的全耦合各向异性本构方程。要特别注意主要机械领域之间的强耦合,例如弹塑性,非线性各向同性和运动学混合硬化,延性各向同性损伤以及在非缔合和非正态配方框架内的摩擦接触。提出了有关耦合本构方程的局部积分以及(全局)平衡积分方案的相关数值方面。归因于牛顿迭代方案应用于简化的常微分方程组,从而概述了局部积分。对于全局解决的平衡问题,使用具有自适应时间步长控制的经典动态显式(DE)方案。这种完全耦合的过程被实现到用于金属成型仿真的通用有限元代码中,即ABAQUS / explicit。这为金属成型过程的物理实现之前的虚拟优化提供了强大的数值工具。可以针对延展性损坏的发生进行优化,以避免损坏的发生,如在锻造,冲压,深冲等过程中没有损坏的部分,或者有利于某些金属切削过程中损坏的发生和扩展。通过切屑形成落料,断头处理或机加工。给出了两个与钣金成形有关的3D示例,以显示所提出的方法能够预测金属成形过程中的损伤开始和增长的能力。

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