School of Mechanical Engineering, Purdue University, West Lafayette, IN, USA.
Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USA.
Biomech Model Mechanobiol. 2022 Dec;21(6):1-16. doi: 10.1007/s10237-022-01624-y. Epub 2022 Sep 3.
The analysis of tissue mechanics in biomedical applications demands nonlinear constitutive models able to capture the energy dissipation mechanisms, such as damage, that occur during tissue deformation. Furthermore, implementation of sophisticated material models in finite element models is essential to improve medical devices and diagnostic tools. Building on previous work toward microstructure-driven models of collagenous tissue, here we show a constitutive model based on fiber orientation and waviness distributions for skin that captures not only the anisotropic strain-stiffening response of this and other collagen-based tissues, but, additionally, accounts for tissue damage directly as a function of changes in the microstructure, in particular changes in the fiber waviness distribution. The implementation of this nonlinear constitutive model as a user subroutine in the popular finite element package Abaqus enables large-scale finite element simulations for biomedical applications. We showcase the performance of the model in fracture simulations during pure shear tests, as well as simulations of needle insertion into skin relevant to auto-injector design.
生物医学应用中的组织力学分析需要能够捕捉能量耗散机制(如损伤)的非线性本构模型,这些机制发生在组织变形过程中。此外,在有限元模型中实现复杂的材料模型对于改进医疗设备和诊断工具至关重要。基于先前针对胶原组织的微观结构驱动模型的工作,我们在这里展示了一个基于皮肤纤维方向和波纹度分布的本构模型,该模型不仅可以捕捉这种和其他基于胶原的组织的各向异性应变硬化响应,而且还可以直接将组织损伤作为微观结构变化的函数来考虑,特别是纤维波纹度分布的变化。将这个非线性本构模型作为流行的有限元包 Abaqus 中的用户子程序实现,使大规模的有限元模拟能够应用于生物医学领域。我们展示了该模型在纯剪切试验中的断裂模拟以及与自动注射器设计相关的皮肤针插入模拟中的性能。