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平面软组织广义冯弹性本构模型的有限元实现

Finite element implementation of a generalized Fung-elastic constitutive model for planar soft tissues.

作者信息

Sun Wei, Sacks Michael S

机构信息

Department of Bioengineering, McGowan Institute for Regenerative Medicine, University of Pittsburgh, Pittsburgh, PA 15219, USA.

出版信息

Biomech Model Mechanobiol. 2005 Nov;4(2-3):190-9. doi: 10.1007/s10237-005-0075-x. Epub 2005 Aug 2.

Abstract

Numerical simulations of the anisotropic mechanical properties of soft tissues and tissue-derived biomaterials using accurate constitutive models remain an important and challenging research area in biomechanics. While most constitutive modeling efforts have focused on the characterization of experimental data, only limited studies are available on the feasibility of utilizing those models in complex computational applications. An example is the widely utilized exponential constitutive model proposed by Fung. Although present in the biomechanics literature for several decades, implementation of this model into finite element (FE) simulations has been limited. A major reason for limited numerical implementations are problems associated with inherent numerical instability and convergence. To address this issue, we developed and applied two restrictions for a generalized Fung-elastic constitutive model necessary to achieve numerical stability. These are (1) convexity of the strain energy function, and (2) the condition number of material stiffness matrix set lower than a prescribed value. These constraints were implemented in the nonlinear regression used for constitutive model parameter estimation to the experimental biaxial mechanical data. We then implemented the generalized Fung-elastic model into a commercial FE code (ABAQUS, Pawtucket, RI, USA). Single element and multi-element planar biaxial test simulations were conducted to verify the accuracy and robustness of the implementation. Results indicated that numerical convergence and accurate FE implementation were consistently obtained. The present study thus presents an integrated framework for accurate and robust implementation of pseudo-elastic constitutive models for planar soft tissues. Moreover, since our approach is formulated within a general FE code, it can be straightforwardly adopted across multiple software platforms.

摘要

使用精确的本构模型对软组织和组织衍生生物材料的各向异性力学性能进行数值模拟,仍然是生物力学中一个重要且具有挑战性的研究领域。虽然大多数本构建模工作都集中在实验数据的表征上,但关于在复杂计算应用中使用这些模型的可行性的研究却很有限。一个例子是冯提出的广泛使用的指数本构模型。尽管该模型在生物力学文献中已存在数十年,但将其应用于有限元(FE)模拟一直受到限制。数值实现有限的一个主要原因是与固有数值不稳定性和收敛性相关的问题。为了解决这个问题,我们针对广义冯弹性本构模型开发并应用了两个实现数值稳定性所必需的限制条件。这些条件是:(1)应变能函数的凸性,以及(2)材料刚度矩阵的条件数设定为低于规定值。这些约束条件在用于对实验双轴力学数据进行本构模型参数估计的非线性回归中得以实现。然后,我们将广义冯弹性模型应用到一个商业有限元代码(ABAQUS,美国罗德岛州波塔基特)中。进行了单元素和多元素平面双轴测试模拟,以验证该实现的准确性和稳健性。结果表明,始终能够获得数值收敛和精确的有限元实现。因此,本研究提出了一个用于平面软组织的伪弹性本构模型精确且稳健实现的综合框架。此外,由于我们的方法是在通用有限元代码中制定的,所以可以直接在多个软件平台上采用。

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