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用于牙釉质多尺度模拟的包含多种损伤机制的各向异性本构模型。

Anisotropic constitutive model incorporating multiple damage mechanisms for multiscale simulation of dental enamel.

作者信息

Ma Songyun, Scheider Ingo, Bargmann Swantje

机构信息

Institute of Materials Research, Materials Mechanics/ACE-Centre, Helmholtz-Zentrum Geesthacht, Germany.

Institute of Materials Research, Materials Mechanics/ACE-Centre, Helmholtz-Zentrum Geesthacht, Germany.

出版信息

J Mech Behav Biomed Mater. 2016 Sep;62:515-533. doi: 10.1016/j.jmbbm.2016.05.033. Epub 2016 Jun 3.

DOI:10.1016/j.jmbbm.2016.05.033
PMID:27294283
Abstract

An anisotropic constitutive model is proposed in the framework of finite deformation to capture several damage mechanisms occurring in the microstructure of dental enamel, a hierarchical bio-composite. It provides the basis for a homogenization approach for an efficient multiscale (in this case: multiple hierarchy levels) investigation of the deformation and damage behavior. The influence of tension-compression asymmetry and fiber-matrix interaction on the nonlinear deformation behavior of dental enamel is studied by 3D micromechanical simulations under different loading conditions and fiber lengths. The complex deformation behavior and the characteristics and interaction of three damage mechanisms in the damage process of enamel are well captured. The proposed constitutive model incorporating anisotropic damage is applied to the first hierarchical level of dental enamel and validated by experimental results. The effect of the fiber orientation on the damage behavior and compressive strength is studied by comparing micro-pillar experiments of dental enamel at the first hierarchical level in multiple directions of fiber orientation. A very good agreement between computational and experimental results is found for the damage evolution process of dental enamel.

摘要

在有限变形框架下提出了一种各向异性本构模型,以描述牙釉质(一种分层生物复合材料)微观结构中出现的多种损伤机制。它为一种均匀化方法提供了基础,用于对变形和损伤行为进行高效的多尺度(在这种情况下:多个层次级别)研究。通过在不同加载条件和纤维长度下的三维微观力学模拟,研究了拉压不对称性和纤维 - 基体相互作用对牙釉质非线性变形行为的影响。很好地捕捉了牙釉质损伤过程中复杂的变形行为以及三种损伤机制的特征和相互作用。所提出的包含各向异性损伤的本构模型应用于牙釉质的第一层次级别,并通过实验结果进行了验证。通过比较牙釉质在第一层次级别多个纤维取向方向上的微柱实验,研究了纤维取向对损伤行为和抗压强度的影响。在牙釉质损伤演化过程的计算结果和实验结果之间发现了非常好的一致性。

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