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一种用于平面软组织有效响应的材料建模方法,可实现高效的计算模拟。

A material modeling approach for the effective response of planar soft tissues for efficient computational simulations.

机构信息

Willerson Center for Cardiovascular Modeling and Simulation, Institute for Computational Engineering and Sciences, Department of Biomedical Engineering, The University of Texas at Austin, Austin, TX 78712-0027, USA.

出版信息

J Mech Behav Biomed Mater. 2019 Jan;89:168-198. doi: 10.1016/j.jmbbm.2018.09.016. Epub 2018 Sep 20.

Abstract

One of the most crucial aspects of biomechanical simulations of physiological systems that seek to predict the outcomes of disease, injury, and surgical interventions is the underlying soft tissue constitutive model. Soft tissue constitutive modeling approaches have become increasingly complex, often utilizing meso- and multi-scale methods for greater predictive capability and linking to the underlying biological mechanisms. However, such modeling approaches are associated with substantial computational costs. One solution is to use effective constitutive models in place of meso- and multi-scale models in numerical simulations but derive their responses by homogenizing the responses of the underlying meso- or multi-scale models. A robust effective constitutive model can thus drastically increase the speed of simulations for a wide range of meso- and multi-scale models. However, there is no consensus on how to develop a single effective constitutive model and optimal methods for parameter estimation for a wide range of soft tissue responses. In the present study, we developed an effective constitutive model which can fully reproduce the response of a wide range of planar soft tissues, along with a method for robust and fast-convergent parameter estimation. We then evaluated our approach and demonstrated its ability to handle materials of widely varying degrees of stiffness and anisotropy. Furthermore, we demonstrated the robutst performance of the meso-structural to effective constitutive model framework in finite element simulations of tri-leaflet heart valves. We conclude that the effective constitutive modeling approach has significant potential for improving the computational efficiency and numerical robustness of multi-scale and meso-scale models, facilitating efficient soft tissue simulations in such demanding applications as inverse modeling and growth.

摘要

生理系统生物力学模拟中,预测疾病、损伤和手术干预结果的一个最关键方面是基础软组织本构模型。软组织本构建模方法变得越来越复杂,通常利用细观和多尺度方法来提高预测能力,并与基础生物学机制联系起来。然而,此类建模方法涉及大量的计算成本。一种解决方案是在数值模拟中使用有效的本构模型代替细观和多尺度模型,但通过均匀化基础细观或多尺度模型的响应来推导其响应。因此,稳健有效的本构模型可以大大提高各种细观和多尺度模型的模拟速度。然而,对于如何为广泛的软组织响应开发单一有效的本构模型以及最佳的参数估计方法,尚无共识。在本研究中,我们开发了一种有效的本构模型,该模型可以完全再现广泛的平面软组织的响应,以及一种稳健且快速收敛的参数估计方法。然后,我们评估了我们的方法,并证明了它处理具有广泛硬度和各向异性的材料的能力。此外,我们还证明了三叶心脏瓣膜有限元模拟中细观结构到有效本构模型框架的鲁棒性能。我们得出结论,有效的本构建模方法在提高多尺度和细观尺度模型的计算效率和数值稳健性方面具有重要潜力,有助于在诸如反向建模和生长等要求苛刻的应用中进行有效的软组织模拟。

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