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使用数字图像相关技术对软组织模拟聚合物进行设计与力学特性表征

Design and Mechanical Characterization Using Digital Image Correlation of Soft Tissue-Mimicking Polymers.

作者信息

Grimaldo Ruiz Oliver, Rodriguez Reinoso Mariana, Ingrassia Elena, Vecchio Federico, Maniero Filippo, Burgio Vito, Civera Marco, Bitan Ido, Lacidogna Giuseppe, Surace Cecilia

机构信息

Department of Structural, Geotechnical and Building Engineering (DISEG), Politecnico di Torino, Corso Duca Degli Abruzzi 24. P. C., 10129 Turin, Italy.

Laboratory of Bio-Inspired Nanomechanics "Giuseppe Maria Pugno", Politecnico di Torino, Corso Duca Degli Abruzzi 24. P. C., 10129 Turin, Italy.

出版信息

Polymers (Basel). 2022 Jun 28;14(13):2639. doi: 10.3390/polym14132639.

Abstract

Present and future anatomical models for biomedical applications will need bio-mimicking three-dimensional (3D)-printed tissues. These would enable, for example, the evaluation of the quality-performance of novel devices at an intermediate step between ex-vivo and in-vivo trials. Nowadays, PolyJet technology produces anatomical models with varying levels of realism and fidelity to replicate organic tissues. These include anatomical presets set with combinations of multiple materials, transitions, and colors that vary in hardness, flexibility, and density. This study aims to mechanically characterize multi-material specimens designed and fabricated to mimic various bio-inspired hierarchical structures targeted to mimic tendons and ligaments. A Stratasys J750™ 3D Printer was used, combining the Agilus30™ material at different hardness levels in the bio-mimicking configurations. Then, the mechanical properties of these different options were tested to evaluate their behavior under uni-axial tensile tests. Digital Image Correlation (DIC) was used to accurately quantify the specimens' large strains in a non-contact fashion. A difference in the mechanical properties according to pattern type, proposed hardness combinations, and matrix-to-fiber ratio were evidenced. The specimens V, J1, A1, and C were selected as the best for every type of pattern. Specimens V were chosen as the leading combination since they exhibited the best balance of mechanical properties with the higher values of Modulus of elasticity (2.21 ± 0.17 MPa), maximum strain (1.86 ± 0.05 mm/mm), and tensile strength at break (2.11 ± 0.13 MPa). The approach demonstrates the versatility of PolyJet technology that enables core materials to be tailored based on specific needs. These findings will allow the development of more accurate and realistic computational and 3D printed soft tissue anatomical solutions mimicking something much closer to real tissues.

摘要

用于生物医学应用的当前和未来解剖模型将需要仿生三维(3D)打印组织。例如,这将能够在体外和体内试验之间的中间步骤评估新型设备的质量性能。如今,PolyJet技术可生产具有不同逼真度和保真度的解剖模型,以复制有机组织。这些模型包括通过多种材料、过渡和颜色的组合设置的解剖预设,这些材料在硬度、柔韧性和密度方面各不相同。本研究旨在对设计和制造的多材料样本进行力学表征,以模拟针对肌腱和韧带的各种仿生层次结构。使用了Stratasys J750™ 3D打印机,在仿生配置中结合了不同硬度水平的Agilus30™ 材料。然后,测试了这些不同选项的力学性能,以评估它们在单轴拉伸试验下的行为。使用数字图像相关(DIC)以非接触方式准确量化样本的大应变。结果表明,根据图案类型、建议的硬度组合和基体与纤维比例,力学性能存在差异。样本V、J1、A1和C被选为每种图案类型的最佳样本。样本V被选为最佳组合,因为它们在弹性模量(2.21±0.17 MPa)、最大应变(1.86±0.05 mm/mm)和断裂拉伸强度(2.11±0.13 MPa)方面表现出最佳的力学性能平衡。该方法展示了PolyJet技术的多功能性,能够根据特定需求定制核心材料。这些发现将有助于开发更准确、更逼真的计算和3D打印软组织解剖解决方案,更接近真实组织。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8a9/9269014/412ad5276768/polymers-14-02639-g001.jpg

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