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定制矫形器的材料性能评估:压缩、弯曲和拉伸试验与有限元分析相结合

Material Performance Evaluation for Customized Orthoses: Compression, Flexural, and Tensile Tests Combined with Finite Element Analysis.

作者信息

Trindade Daniela, Habiba Rachel, Fernandes Cristiana, Costa André A, Silva Rui, Alves Nuno, Martins Rui, Malça Cândida, Branco Ricardo, Moura Carla

机构信息

Center for Rapid and Sustainable Product Development (CDRSP), Polytechnic of Leiria, 2430-028 Marinha Grande, Portugal.

Applied Research Institute, Polytechnic Institute of Coimbra, Rua da Misericórdia, Lagar dos Cortiços, S. Martinho do Bispo, 3045-093 Coimbra, Portugal.

出版信息

Polymers (Basel). 2024 Sep 10;16(18):2553. doi: 10.3390/polym16182553.

Abstract

Orthoses are commonly used for treating injuries to improve the quality of life of patients, with customized orthoses offering significant benefits. Additive manufacturing, especially fused deposition modelling, enhances these benefits by providing faster, more precise, and more comfortable orthoses. The present study evaluates nine polymeric materials printed in horizontal and vertical directions by assessing their performance through compressive, flexural, and tensile tests. Among all materials, polycarbonate, polylactic acid, and ULTEM 1010 showed the most promising results, not only because they had the highest mechanical values, but also due to their minimal or no difference in performance between printing directions, making them advantageous in orthoses fabrication. Based on this, a finite element model of an ankle-foot orthosis was developed to simulate the deformation, strain, and stress fields under static conditions. The findings aim to optimize material selection for orthotic fabrication, where ULTEM 1010 is presented as the material with improved performance and durability.

摘要

矫形器常用于治疗损伤,以提高患者的生活质量,定制矫形器具有显著益处。增材制造,尤其是熔融沉积建模,通过提供更快、更精确和更舒适的矫形器增强了这些益处。本研究通过压缩、弯曲和拉伸试验评估其性能,对九种在水平和垂直方向打印的聚合物材料进行了评估。在所有材料中,聚碳酸酯、聚乳酸和ULTEM 1010表现出最有前景的结果,这不仅是因为它们具有最高的力学值,还因为它们在打印方向之间的性能差异最小或没有差异,这使得它们在矫形器制造中具有优势。基于此,开发了一种踝足矫形器的有限元模型,以模拟静态条件下的变形、应变和应力场。研究结果旨在优化矫形器制造的材料选择,其中ULTEM 1010被视为具有改进性能和耐用性的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e73/11435043/23c0b88c77d8/polymers-16-02553-g001.jpg

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