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A new model describing plastic distortion fully coupled with ductile damage

机译:一种新模型,描述塑性失真与韧性损伤完全联接

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The complex macroscopic mechanical behavior due to the polycrystalline texture evolution under complex loading paths cannot be efficiently captured by the classical isotropic and kinematic hardening constitutive equations. The complex physical interplay of different directional texture leads to an evolving shape of the yield surface due to induced anisotropy, which can be described by distortional hardening. In the present work, induced anisotropy is explicitly developed using both motion and distortion of the yield and the plastic potential surfaces. A modified Francois (2001) model based on "egg-shaped" subsequent yield surfaces is developed. This model is controlled by three material parameters allowing the shape change in two orthogonal directions of kinematic hardening. Two surfaces (the yield function and the plastic potential) in the framework of non-associated plasticity are used together with Continuum Damage Mechanics (CDM) framework in order to develop an elastoplastic model fully coupled with ductile damage. This model is implemented into ABAQUS/Explicit finite element code through the user subroutine/VUMAT. The capability of the developed model is briefly outlined through the comparison with Khan's experimental results with high work hardening alloy A1100.
机译:由于经典各向同性和运动型硬化构成型方程,不能有效地捕获由于复合负载路径下的多晶纹理演化引起的复杂宏观力学行为。不同方向纹理的复杂物理相互作用导致由于诱导的各向异性引起的屈服表面的发展形状,这可以通过扭曲硬化来描述。在本作工作中,使用屈服和塑料电位表面的运动和变形来明确开发诱导的各向异性。开发了基于“蛋形”后续产屈曲面的改进的Francois(2001)模型。该模型由三个材料参数控制,允许在运动硬化的两个正交方向上变形。非相关塑性框架中的两个表面(屈服函数和塑料电位)与连续损伤力学(CDM)框架一起使用,以便开发完全耦合的弹塑性模型与韧性损坏。该模型通过用户子程序/ vumat实现到ABAQUS /显式有限元代码中。通过与Khan的实验结果的比较简要概述了开发模型的能力,通过高效的硬化合金A1100。

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