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用于骨替代的 Ti、Mg 和 Fe 基生物材料的多材料增材制造技术。

Multi-material additive manufacturing technologies for Ti-, Mg-, and Fe-based biomaterials for bone substitution.

机构信息

Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, Mekelweg 2, 2628 CD Delft, the Netherlands.

Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, Mekelweg 2, 2628 CD Delft, the Netherlands.

出版信息

Acta Biomater. 2020 Jun;109:1-20. doi: 10.1016/j.actbio.2020.03.037. Epub 2020 Apr 6.

Abstract

The growing interest in multi-functional metallic biomaterials for bone substitutes challenges the current additive manufacturing (AM, =3D printing) technologies. It is foreseeable that advances in multi-material AM for metallic biomaterials will not only allow for complex geometrical designs, but also improve their multi-functionalities by tuning the types or compositions of the underlying base materials, thereby presenting unprecedented opportunities for advanced orthopedic treatments. AM technologies are yet to be extensively explored for the fabrication of multi-functional metallic biomaterials, especially for bone substitutes. The aim of this review is to present the viable options of the state-of-the-art multi-material AM for Ti-, Mg-, and Fe-based biomaterials to be used as bone substitutes. The review starts with a brief review of bone tissue engineering, the design requirements, and fabrication technologies for metallic biomaterials to highlight the advantages of using AM over conventional fabrication methods. Five AM technologies suitable for metal 3D printing are compared against the requirements for multi-material AM. Of these AM technologies, extrusion-based multi-material AM is shown to have the greatest potential to meet the requirements for the fabrication of multi-functional metallic biomaterials. Finally, recent progress in the fabrication of Ti-, Mg-, and Fe-based biomaterials including the utilization of multi-material AM technologies is reviewed so as to identify the knowledge gaps and propose the directions of further research for the development of multi-material AM technologies that are applicable for the fabrication of multi-functional metallic biomaterials. STATEMENT OF SIGNIFICANCE: Addressing a critical bone defect requires the assistance of multi-functional porous metallic bone substitutes. As one of the most advanced fabrication technology in bone tissue engineering, additive manufacturing is challenged for its viability in multi-material fabrication of metallic biomaterials. This article reviews how the current metal additive manufacturing technologies have been and can be used for multi-material fabrication of Ti-, Mg-, and Fe-based bone substitutes. Progress on the Ti-, Mg-, and Fe-based biomaterials, including the utilization of multi-material additive manufacturing, are discussed to direct future research for advancing the multi-functional additively manufactured metallic bone biomaterials.

摘要

多用途金属生物材料在骨替代物中的应用日益受到关注,这给当前的增材制造(AM,即 3D 打印)技术带来了挑战。可以预见,多材料 AM 在金属生物材料方面的进展不仅可以实现复杂的几何设计,还可以通过调整基础材料的类型或组成来改善其多功能性,从而为先进的骨科治疗带来前所未有的机会。AM 技术在用于制造多功能金属生物材料方面的应用还需要进一步探索,尤其是在骨替代物方面。本文的目的是介绍用于制造 Ti、Mg 和 Fe 基生物材料的最先进的多材料 AM 技术的可行方案,将其用作骨替代物。本文首先简要回顾了骨组织工程、金属生物材料的设计要求和制造技术,以突出使用 AM 相对于传统制造方法的优势。然后将五种适合金属 3D 打印的 AM 技术与多材料 AM 的要求进行了比较。在这些 AM 技术中,挤出式多材料 AM 被证明最有潜力满足多功能金属生物材料制造的要求。最后,本文综述了 Ti、Mg 和 Fe 基生物材料的最新制造进展,包括多材料 AM 技术的利用,以确定知识空白,并提出进一步研究的方向,以开发适用于多功能金属生物材料制造的多材料 AM 技术。

意义陈述

解决严重的骨缺损需要多功能多孔金属骨替代物的辅助。作为骨组织工程中最先进的制造技术之一,增材制造在其用于金属生物材料的多材料制造方面的可行性受到了挑战。本文回顾了当前的金属增材制造技术在 Ti、Mg 和 Fe 基骨替代物的多材料制造中的应用和潜力。讨论了 Ti、Mg 和 Fe 基生物材料的进展,包括多材料增材制造的利用,以指导未来的研究,推进多功能增材制造金属骨生物材料的发展。

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