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Biomedical Applications of Metal 3D Printing
Annual Review of Biomedical Engineering ( IF 12.8 ) Pub Date : 2021-07-13 , DOI: 10.1146/annurev-bioeng-082020-032402
Luis Fernando Velásquez-García 1 , Yosef Kornbluth 2
Affiliation  

Additive manufacturing's attributes include print customization, low per-unit cost for small- to mid-batch production, seamless interfacing with mainstream medical 3D imaging techniques, and feasibility to create free-form objects in materials that are biocompatible and biodegradable. Consequently, additive manufacturing is apposite for a wide range of biomedical applications including custom biocompatible implants that mimic the mechanical response of bone, biodegradable scaffolds with engineered degradation rate, medical surgical tools, and biomedical instrumentation. This review surveys the materials, 3D printing methods and technologies, and biomedical applications of metal 3D printing, providing a historical perspective while focusing on the state of the art. It then identifies a number of exciting directions of future growth: (a) the improvement of mainstream additive manufacturing methods and associated feedstock; (b) the exploration of mature, less utilized metal 3D printing techniques; (c) the optimization of additively manufactured load-bearing structures via artificial intelligence; and (d) the creation of monolithic, multimaterial, finely featured, multifunctional implants.

中文翻译:


金属 3D 打印的生物医学应用

增材制造的属性包括打印定制、中小批量生产的低单位成本、与主流医学 3D 成像技术的无缝接口,以及在具有生物相容性和可生物降解性的材料中创建自由形状物体的可行性。因此,增材制造适用于广泛的生物医学应用,包括模拟骨骼机械响应的定制生物相容性植入物、具有工程降解率的可生物降解支架、医疗手术工具和生物医学仪器。这篇综述调查了金属 3D 打印的材料、3D 打印方法和技术以及生物医学应用,提供了一个历史视角,同时专注于最先进的技术。然后确定了许多令人兴奋的未来增长方向:(a ) 主流增材制造方法和相关原料的改进;( b ) 探索成熟的、应用较少的金属 3D 打印技术;( c ) 通过人工智能优化增材制造的承重结构;( d ) 创造整体的、多材料的、精细特征的、多功能的植入物。

更新日期:2021-07-14
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