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A rate-independent elastoplastic constitutive model for biological fiber-reinforced composites at finite strains: continuum basis, algorithmic formulation and finite element implementation

机译:生物纤维增强复合材料在有限应变下与速率无关的弹塑性本构模型:连续基础,算法公式化和有限元实现

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摘要

This paper presents a rate-independent elastoplastic constitutive model for (nearly) incompressible biological fiber-reinforced composite materials. The constitutive framework, based on multisurface plasticity, is suitable for describing the mechanical behavior of biological fiber-reinforced composites in finite elastic and plastic strain domains. A key point of the constitutive model is the use of slip systems, which determine the strongly anisotropic elastic and plastic behavior of biological fiber-reinforced composites. The multiplicative decomposition of the deformation gradient into elastic and plastic parts allows the introduction of an anisotropic Helmholtz free-energy function for determining the anisotropic response. We use the unconditionally stable backward-Euler method to integrate the flow rule and employ the commonly used elastic predictor/plastic corrector concept to update the plastic variables. This choice is expressed as an Eulerian vector update the Newton's type, which leads to a numerically stable and efficient material model. By means of a representative numerical simulations the performance of the proposed constitutive framework is investigated in detail.
机译:本文提出了一种(几乎)不可压缩的生物纤维增强复合材料的速率无关的弹塑性本构模型。基于多表面可塑性的本构框架适用于描述生物纤维增强复合材料在有限弹性和塑性应变域中的力学行为。本构模型的关键是滑动系统的使用,该系统确定了生物纤维增强复合材料的强各向异性弹性和塑性行为。变形梯度到弹性和塑性零件的乘法分解允许引入各向异性亥姆霍兹自由能函数来确定各向异性响应。我们使用无条件稳定的后向欧拉方法对流规则进行积分,并采用常用的弹性预测器/塑性校正器概念来更新塑性变量。这种选择表示​​为更新牛顿类型的欧拉向量,这导致了数值上稳定有效的材料模型。通过代表性的数值模拟,对所提出的本构框架的性能进行了详细研究。

著录项

  • 来源
    《Computational Mechanics》 |2002年第5期|340-360|共21页
  • 作者

    T. C. Gasser; G. A. Holzapfel;

  • 作者单位

    Institute for Structural Analysis – Computational Biomechanics Graz University of Technology 8010 Graz Schiesstattgasse 14-B Austria e-mail: gh@biomech.tu-graz.ac.at;

    Institute for Structural Analysis – Computational Biomechanics Graz University of Technology 8010 Graz Schiesstattgasse 14-B Austria e-mail: gh@biomech.tu-graz.ac.at;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Keywords Biomechanics; Soft Tissue; Elastoplasticity; Anisotropy; Finite Element Method;

    机译:关键词:生物力学;软组织;弹塑性各向异性有限元法;

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