3d打印支架的力学特性:使用虚拟测试和均质化的多目标优化方法。

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Pablo I León, Uwe Muhlich, Pedro C Aravena, Gabriela Martínez
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引用次数: 0

摘要

开发了一种表征使用3D打印制造的蜂窝材料力学性能的方法,特别是采用熔融沉积建模(FDM)技术。该方法结合了数值模拟、虚拟测试和基于遗传算法的优化,以确定材料的各向异性特性,这对于组织工程等生物医学应用至关重要。使用代表性单元胞的均质化可以计算正交异性,包括弹性模量(E1, E2, E3),泊松比(ν12, ν13和ν23)和剪切模量(G12, G13, G23)。这些结果验证了基于已知位移和应力状态的l形梁模型的虚拟测试。在FDM模型的虚拟测试中,观察到与实验结果的显著相关性,证实了材料的各向异性及其对变形和应力的影响。同时,有效介质试验表明,模拟值与实验值的符合率在95%以上,验证了本构模型的准确性。优化过程基于多目标遗传算法,通过控制迭代确定材料的力学性能,实现了与均质模型结果的强相关性。这些发现为使用FDM技术表征和优化3d打印材料提供了一种新的方法,为组织工程中的应用提供了一种高效可靠的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical Characterization of 3D-Printed Scaffolds: A Multi-Objective Optimization Approach Using Virtual Testing and Homogenization.

A method to characterize the mechanical properties of cellular materials manufactured using 3D printing, specifically employing the fused deposition modeling (FDM) technique, is developed. Numerical simulations, virtual testing, and optimization based on genetic algorithms are combined in this approach to determine the anisotropic properties of the material, which are essential for biomedical applications such as tissue engineering. Homogenization using representative unit cells enabled the calculation of orthotropic properties, including elastic moduli (E1, E2, E3), Poisson's ratios (ν12, ν13 and ν23), and shear moduli (G12, G13, G23). These results validated the virtual tests using an L-shaped beam model, based on a known state of displacements and stresses. In the virtual test of the FDM model, a significant correlation with experimental results was observed, confirming the material's anisotropy and its influence on deformations and stresses. Meanwhile, the effective medium test demonstrated over 95% agreement between simulated and experimental values, validating the accuracy of the proposed constitutive model. The optimization process, based on multi-objective genetic algorithms, allowed the determination of the material's mechanical properties through controlled iterations, achieving a strong correlation with the results obtained from the homogenization model. These findings present a new approach for characterizing and optimizing 3D-printed materials using FDM techniques, providing an efficient and reliable method for applications in tissue engineering.

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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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