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首页> 外文期刊>Mechanics of Time-Dependent Materials >A constitutive framework for modelling thin incompressible viscoelastic materials under plane stress in the finite strain regime
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A constitutive framework for modelling thin incompressible viscoelastic materials under plane stress in the finite strain regime

机译:本构模型,用于在有限应变状态下模拟平面应力下不可压缩的粘弹性薄材料

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摘要

Rubbers and soft biological tissues may undergo large deformations and are also viscoelastic. The formulation of constitutive models for these materials poses special challenges. In several applications, especially in biomechanics, these materials are also relatively thin, implying that in-plane stresses dominate and that plane stress may therefore be assumed. In the present paper, a constitutive model for viscoelastic materials in the finite strain regime and under the assumption of plane stress is proposed. It is assumed that the relaxation behaviour in the direction of plane stress can be treated separately, which makes it possible to formulate evolution laws for the plastic strains on explicit form at the same time as incompressibility is fulfilled. Experimental results from biomechanics (dynamic inflation of dog aorta) and rubber mechanics (biaxial stretching of rubber sheets) were used to assess the proposed model. The assessment clearly indicates that the model is fully able to predict the experimental outcome for these types of material.
机译:橡胶和柔软的生物组织可能会发生较大变形,并且也是粘弹性的。这些材料的本构模型的提出带来了特殊的挑战。在几种应用中,尤其是在生物力学中,这些材料也相对较薄,这意味着平面应力占主导地位,因此可以假定平面应力。本文提出了在有限应变状态下,在平面应力假设下的粘弹性材料本构模型。假定可以分别处理在平面应力方向上的松弛行为,这使得可以在满足不可压缩性的同时,以明确的形式制定塑性应变的演化规律。生物力学(狗主动脉的动态膨胀)和橡胶力学(橡胶片的双轴拉伸)的实验结果用于评估该模型。评估清楚地表明,该模型完全能够预测这些类型的材料的实验结果。

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