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Topological design and additive manufacturing of porous metals for bone scaffolds and orthopaedic implants: A review

机译:骨支架和骨科植入物多孔金属的拓扑设计和添加剂制造:综述

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摘要

One of the critical issues in orthopaedic regenerative medicine is the design of bone scaffolds and implants that replicate the biomechanical properties of the host bones. Porous metals have found themselves to be suitable candidates for repairing or replacing the damaged bones since their stiffness and porosity can be adjusted on demands. Another advantage of porous metals lies in their open space for the in-growth of bone tissue, hence accelerating the osseointegration process. The fabrication of porous metals has been extensively explored over decades, however only limited controls over the internal architecture can be achieved by the conventional processes. Recent advances in additive manufacturing have provided unprecedented opportunities for producing complex structures to meet the increasing demands for implants with customized mechanical performance. At the same time, topology optimization techniques have been developed to enable the internal architecture of porous metals to be designed to achieve specified mechanical properties at will. Thus implants designed via the topology optimization approach and produced by additive manufacturing are of great interest. This paper reviews the state-of-the-art of topological design and manufacturing processes of various types of porous metals, in particular for titanium alloys, biodegradable metals and shape memory alloys. This review also identifies the limitations of current techniques and addresses the directions for future investigations. (C) 2016 Elsevier Ltd. All rights reserved.
机译:骨科再生医学中的一个关键问题是骨支架和植入物的设计,可以复制宿主骨骼的生物力学性质。多孔金属发现自己是用于修复或更换受损骨骼的合适候选者,因为它们的刚度和孔隙率可以根据要求调节。多孔金属的另一个优点在于它们的开放空间用于骨组织的生长,因此加速了骨整合过程。多孔金属的制造已经广泛探索了几十年,然而,通过传统过程可以实现对内部架构上的有限控制。添加剂制造的最新进展为生产复杂结构提供了前所未有的机会,以满足具有定制机械性能的植入物的日益增长的需求。同时,已经开发出拓扑优化技术以使多孔金属的内部架构设计成均可实现指定的机械性能。因此,通过拓扑优化方法设计并由添加剂制造产生的植入物具有很大的兴趣。本文介绍了各种类型多孔金属的拓扑设计和制造工艺的最先进,特别是对于钛合金,可生物降解的金属和形状记忆合金。该审查还确定了当前技术的局限性,并解决了未来调查的指示。 (c)2016 Elsevier Ltd.保留所有权利。

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