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高度非均相双相特性对关节软骨力学行为的影响。

The effect of highly inhomogeneous biphasic properties on mechanical behaviour of articular cartilage.

机构信息

State Key Laboratory for Manufacturing System Engineering, School of Mechanical Engineering, Xi'an Jiaotong University, 710054, Xi'an, Shaanxi, China.

Institute of Medical and Biological Engineering, School of Mechanical Engineering, University of Leeds, Leeds, LS2 9JT, United Kingdom.

出版信息

Comput Methods Programs Biomed. 2021 Jul;206:106122. doi: 10.1016/j.cmpb.2021.106122. Epub 2021 Apr 22.

Abstract

BACKGROUND AND OBJECTIVE

Investigating the biomechanics of cartilage could help to understand the unique load-bearing property of the cartilage and optimize the scaffold design in tissue-engineering. It is important to model the cartilage as a highly inhomogeneous fibril-reinforced biphasic material to represent its complex composition and structure. The depth-dependent and strain-dependent properties of the cartilage would also play an important role in its mechanical behaviour. However, the differences in representing the cartilage as a highly inhomogeneous model or as simplified models still remain unclear. Hence, in this study, a highly inhomogeneous fibril-reinforced biphasic cartilage model considering both the depth-dependent and strain-dependent properties was constructed; the effect of highly inhomogeneous properties on the mechanical behaviour of articular cartilage was investigated.

METHODS

A finite element model of the cartilage was developed based on a flat-ended indentation test. Compressive forces were applied to four various inhomogeneous layered models through a porous indenter (Model 1: nine layers with strain-dependent permeability; Model 2: three layers with strain-dependent permeability; Model 3: single layer with strain-dependent permeability; Model 4: nine layers with constant permeability).

RESULTS

Models 1 and 2 provided similar results with less than 3% difference in the peak effective stress, contact pressure, fluid pressure as well as fluid support ratio. However, Model 1 to Model 3 differed in stress and strain distribution patterns along depth over prolonged loads, which may provide an important insight into the highly inhomogeneous depth-dependent properties of cartilage. In addition, Model 1 with strain-dependent permeability demonstrated an enhanced capability on fluid pressurisation as compared with Model 4 which had constant permeability.

CONCLUSIONS

A highly inhomogeneous fibril-reinforced biphasic model considering both depth-dependent and strain-dependent properties was developed in this study, in order to illustrate the effect of highly inhomogeneous properties on the mechanical behaviour of the articular cartilage. The number of layers in the models with depth-dependent properties should be selected according to the research questions and clinical demands. The model with strain-dependent permeability offers an enhanced capability on fluid pressurisation. In future studies, the proposed model could be adopted in cell-models to provide more in-depth information or in tissue-engineering to optimize the depth-dependent scaffold structure.

摘要

背景与目的

研究软骨的生物力学可以帮助我们理解软骨独特的承载特性,并优化组织工程中的支架设计。将软骨建模为高度各向异性的纤维增强双相材料以代表其复杂的组成和结构非常重要。软骨的深度依赖性和应变依赖性特性也在其力学行为中起着重要作用。然而,将软骨表示为高度各向异性模型还是简化模型的差异仍不清楚。因此,在本研究中,构建了一个同时考虑深度依赖性和应变依赖性特性的高度各向异性纤维增强双相软骨模型;研究了高度各向异性特性对关节软骨力学行为的影响。

方法

基于平面端压痕试验,开发了软骨的有限元模型。通过多孔压头向四个不同的非均匀分层模型施加压缩力(模型 1:具有应变依赖性渗透率的九层;模型 2:具有应变依赖性渗透率的三层;模型 3:具有应变依赖性渗透率的单层;模型 4:具有恒定渗透率的九层)。

结果

模型 1 和模型 2 的峰值有效应力、接触压力、流体压力和流体支撑比的差异均小于 3%。然而,在延长的载荷下,模型 1 到模型 3 在沿深度的应力和应变分布模式上存在差异,这可能为软骨的高度各向异性深度依赖性特性提供重要的见解。此外,与具有恒定渗透率的模型 4 相比,具有应变依赖性渗透率的模型 1 显示出增强的流体加压能力。

结论

本研究开发了一个同时考虑深度依赖性和应变依赖性特性的高度各向异性纤维增强双相模型,以说明高度各向异性特性对关节软骨力学行为的影响。具有深度依赖性特性的模型中的层数应根据研究问题和临床需求进行选择。具有应变依赖性渗透率的模型提供了增强的流体加压能力。在未来的研究中,所提出的模型可以被应用于细胞模型以提供更深入的信息,或在组织工程中优化深度依赖性支架结构。

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