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基于非线性纤维束-细胞的人体组织样本现象学建模。

Nonlinear fiber-bundle-cells-based phenomenological modeling of human tissue samples.

机构信息

Department of Polymer Engineering, Faculty of Mechanical Engineering, Budapest University of Technology and Economics, 3 Műegyetem Rkp., Budapest, 1111, Hungary.

Department of Mechatronics, Optics and Engineering Informatics, Faculty of Mechanical Engineering, Budapest University of Technology and Economics, 3 Műegyetem Rkp., Budapest, 1111, Hungary.

出版信息

Biomech Model Mechanobiol. 2022 Dec;21(6):1803-1823. doi: 10.1007/s10237-022-01621-1. Epub 2022 Oct 26.

Abstract

Certain assemblies of fibers, called fiber bundles, play a crucial role in the statistical macroscale properties of fibrous structures like natural or artificial materials. Based on the concept of using idealized statistical fiber bundle cells (FBCs) as model elements, the software named FiberSpace was developed by us earlier for the phenomenological modeling of the tensile test process of real fibrous structures. The model fibers of these FBCs had been considered linear elastic, which was suitable for modeling certain textiles and composites. However, the biological tissues are multilevel structures with fiber-like building elements on every structural level where the fiber elements on the dominant level are statistical bundles of elementary fibers. Hence, their modeling required us to introduce model fibers of nonlinear mechanical behavior and derive the proper mathematical formulas for the calculation of the expected tensile force processes of the FBCs. Accordingly, we developed a new version of FiberSpace. The proposed nonlinear FBCs-based modeling method is essentially phenomenological that decomposes the measured and averaged stress-strain curve into the weighted sum of the responses of different idealized nonlinear FBCs. However, this decomposition can give certain information about the fibrous structure and some details of its damage and failure sub-processes. A special application of nonlinear E-bundles, where the measured stress-strain curve is expanded into a product-function series, may give another type of description for the failure process and can be applied to single measurements of structured failure process containing significant peaks and drops as well. The fitted phenomenological FBC models provide a decomposition of the measured force-strain curve, which enables to construct informative damage and failure maps. The applicability of the phenomenological modeling method and the fitting procedure is demonstrated with the tensile test data of some human and animal tissues, such as facial nerves and tendons.

摘要

某些纤维集合体,称为纤维束,在纤维结构的统计宏观性质中起着至关重要的作用,例如天然或人工材料。基于使用理想化的统计纤维束单元(FBC)作为模型元素的概念,我们之前开发了名为 FiberSpace 的软件,用于对真实纤维结构的拉伸试验过程进行现象学建模。这些 FBC 的模型纤维被认为是线弹性的,这适用于某些纺织品和复合材料的建模。然而,生物组织是多层次结构,在每个结构层次上都有纤维状的构建元素,在主要层次上的纤维元素是基本纤维的统计束。因此,它们的建模要求我们引入具有非线性机械行为的模型纤维,并推导出适当的数学公式来计算 FBC 的预期拉伸力过程。因此,我们开发了新版本的 FiberSpace。所提出的基于非线性 FBC 的建模方法本质上是现象学的,它将测量和平均的应力-应变曲线分解为不同理想化非线性 FBC 响应的加权和。然而,这种分解可以提供有关纤维结构的某些信息及其某些损伤和失效子过程的细节。非线性 E 束的特殊应用,其中测量的应力-应变曲线扩展为乘积函数系列,可能为失效过程提供另一种描述,并且可以应用于包含显著峰值和下降的结构失效过程的单个测量。拟合的现象学 FBC 模型提供了对测量力-应变曲线的分解,这使得可以构建信息丰富的损伤和失效图。通过一些人体和动物组织(如面神经和肌腱)的拉伸试验数据,证明了现象学建模方法和拟合过程的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/feb3/9700604/a14266ab7885/10237_2022_1621_Fig1_HTML.jpg

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