Wei Jiakai, Zhang Wuxiang, Ding Xilun
School of Mechanical Engineering and Automation, Beihang University, Beijing 100191, China.
Ningbo Institute of Technology, Beihang University, Ningbo 315832, China.
Materials (Basel). 2023 Jul 1;16(13):4775. doi: 10.3390/ma16134775.
Currently, artificial meniscus prostheses are mostly homogenous, low strength, and difficult to mimic the distribution of internal fibers in the native meniscus. To promote the overall mechanical performance of meniscus prostheses, this paper designed a new artificial braided meniscus model and conducted finite element analysis. Firstly, we designed the spatial fiber interweaving structure of meniscus model to mimic the internal fiber distribution of the native meniscus. Secondly, we provided the detailed braiding steps and forming process principles based on the weaving structure. Thirdly, we adopted the models of the fiber-embedded matrix and multi-scale methods separately for finite element analysis to achieve the reliable elastic properties. Meanwhile, we compared the results for two models, which are basically consistent, and verified the accuracy of analysis. Finally, we conducted the comparative simulation analysis of the meniscus model and the pure matrix meniscus model based on the solved elastic constants through Abaqus, which indicated a 60% increase in strength.
目前,人工半月板假体大多是均质的,强度较低,且难以模拟天然半月板内部纤维的分布。为提高半月板假体的整体力学性能,本文设计了一种新型人工编织半月板模型并进行了有限元分析。首先,我们设计了半月板模型的空间纤维交织结构,以模拟天然半月板的内部纤维分布。其次,我们基于该编织结构给出了详细的编织步骤和成型工艺原理。第三,我们分别采用纤维嵌入基体模型和多尺度方法进行有限元分析,以获得可靠的弹性性能。同时,我们比较了两种模型的结果,两者基本一致,验证了分析的准确性。最后,我们通过Abaqus基于求解得到的弹性常数对半月板模型和纯基体半月板模型进行了对比模拟分析,结果表明强度提高了60%。