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用于骨支架的选择性激光熔化多孔金属生物材料的定制力学响应和传质特性

Tailored mechanical response and mass transport characteristic of selective laser melted porous metallic biomaterials for bone scaffolds.

作者信息

Zhang Lei, Song Bo, Yang Lei, Shi Yusheng

机构信息

State Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, China.

State Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, China.

出版信息

Acta Biomater. 2020 Aug;112:298-315. doi: 10.1016/j.actbio.2020.05.038. Epub 2020 Jun 3.

Abstract

Porous metallic biomaterials developed from pentamode metamaterials (PMs) were rationally designed to mimic the topological, mechanical, and mass transport properties of human bones. Here, a series of diamond-based PMs with different strut parameters were fabricated from a Ti-6Al-4V powder by selective laser melting (SLM) technique. The morphological features, mechanical properties and permeability of PM samples were then characterized. In terms of morphology, the as-built PMs were well consistent with the as-designed ones, although the slight surface deviations were presented in overhanging areas. The PM scaffolds showed a switchable deformation pattern controlled by the slenderness ratio of struts. The double-cone strut topology increases the tortuosity and thereby accelerates the nutrients supply, waste removal, and cell migration to the whole scaffold region and circumambient bone tissue. The measured mechanical properties (i.e., E: 0.59-2.90 GPa, σ: 20.59-112.63 MPa) and computational permeability values (k: 9.87-49.19 × 10 m) of PM scaffolds were all in accordance with those of trabecular bone. The experimental permeability values were linearly dependent on the results of simulations. This study showed the great potential of PMs as bone scaffolds. Moreover, we demonstrated that PM-based porous biomaterials can decouple the mass transport and mechanical properties of bone scaffolds, so as to achieve an unprecedented level of tailoring their multi-physics properties. STATEMENT OF SIGNIFICANCE: The topological diversity can significantly improve the adaptability of the implant to the primary bone tissue. Previous studies revealed that the mechanical and mass transport properties of porous biomaterials are correlated to the material types, porosities and lattice topologies but neglected effects of strut design. We show here the influence of strut morphology on the mechanical and mass transport properties which are independently tailored, that is, the mass transport properties can be markedly increased while maintaining the mechanical properties of mimicking specific bones, vice versa. This study emphasizes the importance of strut topological design in the development of AM porous biomaterials.

摘要

由五模超材料(PMs)开发的多孔金属生物材料经过合理设计,以模拟人体骨骼的拓扑、力学和质量传输特性。在此,通过选择性激光熔化(SLM)技术,由Ti-6Al-4V粉末制备了一系列具有不同支柱参数的基于金刚石的PMs。然后对PM样品的形态特征、力学性能和渗透性进行了表征。在形态方面,尽管在悬垂区域存在轻微的表面偏差,但增材制造的PMs与设计的PMs高度一致。PM支架显示出由支柱长细比控制的可切换变形模式。双锥支柱拓扑结构增加了曲折度,从而加速了营养物质的供应、废物的清除以及细胞向整个支架区域和周围骨组织的迁移。PM支架的测量力学性能(即E:0.59 - 2.90 GPa,σ:20.59 - 112.63 MPa)和计算渗透率值(k:9.87 - 49.19×10 m)均与松质骨的性能相符。实验渗透率值与模拟结果呈线性相关。本研究表明PMs作为骨支架具有巨大潜力。此外,我们证明了基于PM的多孔生物材料可以使骨支架的质量传输和力学性能解耦,从而实现前所未有的多物理性能定制水平。重要性声明:拓扑多样性可以显著提高植入物对原生骨组织的适应性。先前的研究表明,多孔生物材料的力学和质量传输性能与材料类型、孔隙率和晶格拓扑结构有关,但忽略了支柱设计的影响。我们在此展示了支柱形态对力学和质量传输性能的影响,这些性能是独立定制的,即可以在保持模拟特定骨骼力学性能的同时显著提高质量传输性能,反之亦然。本研究强调了支柱拓扑设计在增材制造多孔生物材料开发中的重要性。

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