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Kinematic hardening in large strain plasticity

机译:运动硬化大应变可塑性

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A finite strain hyper elasto-plastic constitutive model capable to describe non-linear kinematic hardening as well as nonlinear isotropic hardening is presented. In addition to the intermediate configuration and in order to model kinematic hardening, an additional configuration is introduced - the center configuration; both configurations are chosen to be isoclinic. The yield condition is formulated in terms of the Mandel stress and a back-stress with a structure similar to the Mandel stress. It is shown that the non-dissipative part of the plastic velocity gradient not governed by the thermodynamical framework and the corresponding quantity associated with the kinematic hardening influence the material behaviour to a large extent when kinematic hardening is present. However, for isotropic elasticity and isotropic hardening plasticity it is shown that the non-dissipative quantities have no influence upon the stress-strain relation. As an example, kinematic hardening von Mises plasticity is considered, which fulfils the plastic incompressibility condition and is independent of the hydrostatic pressure. To evaluate the response and to examine the influence of the non-dissipative quantities, simple shear is considered; no stress oscillations occur.
机译:提出了能够描述非线性运动硬化和非线性各向同性硬化的有限应变超弹塑性本构模型。除了中间配置之外,为了对运动强化进行建模,还引入了其他配置-中心配置;两种配置均选择为等斜。屈服条件由曼德尔应力和具有类似于曼德尔应力的结构的背应力来表示。结果表明,存在运动硬化时,塑性速度梯度的非耗散部分不受热力学框架控制,并且与运动硬化相关的相应量在很大程度上影响材料的性能。但是,对于各向同性弹性和各向同性硬化塑性,表明非耗散量对应力-应变关系没有影响。例如,考虑了运动硬化性冯·米塞斯(von Mises)的可塑性,该塑性满足塑性不可压缩条件并且与静水压力无关。为了评估响应并检查非耗散量的影响,考虑了简单剪切。没有应力振荡发生。

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