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Rheological model for stress-softened visco-hyperelastic materials

机译:应力软化粘超弹性材料的流变模型

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A rate-dependent thermodynamically consistent constitutive model for hyperelastic materials in finite strain regime is presented on the basis of multiplicative split of deformation gradient tensor into elastic and viscous parts. The total stress is decomposed into an equilibrium stress and a viscosity-induced overstress by following the Zener rheological model. To incorporate the Mullins stress-softening phenomenon in viscoelastic material, an invariant-based stress-softening function is also proposed. An analytical scheme based on Clausius-Duhem inequality is proposed that ascertains thermodynamic consistency with the fundamental relation between the viscous strain rate and the overstress tensor with some limited elastic parent material models. The proposed softening model is validated with uniaxial stress relaxation test data and the proposed analytical scheme confirms the necessity of considering both the current overstress and the current deformation as variables to describe the evolution of the rate-dependent phenomena.
机译:在将变形梯度张量乘以弹性和粘滞部分的基础上,提出了有限应变状态下超弹性材料的速率依赖的热力学一致本构模型。通过遵循齐纳流变模型,总应力可分解为平衡应力和粘度引起的过应力。为了将穆林斯应力软化现象纳入粘弹性材料中,还提出了基于不变性的应力软化功能。提出了一种基于Clausius-Duhem不等式的解析方案,利用有限的弹性母体模型确定了粘滞应变率与过应力张量之间的基本关系,从而确定了热力学一致性。所提出的软化模型已通过单轴应力松弛测试数据进行了验证,所提出的分析方案证实了必须考虑将电流过应力和电流变形作为变量来描述速率相关现象的演变。

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