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首页> 外文期刊>Acta biomaterialia >Mechanical performance of additively manufactured meta-biomaterials
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Mechanical performance of additively manufactured meta-biomaterials

机译:含有碱性制造的Meta-Biomaterials的机械性能

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摘要

Additive manufacturing (AM) (=3D printing) and rational design techniques have enabled development of meta-biomaterials with unprecedented combinations of mechanical, mass transport, and biological properties. Such meta-biomaterials are usually topologically ordered and are designed by repeating a number of regular unit cells in different directions to create a lattice structure. Establishing accurate topology-property relationships is of critical importance for these materials. In this paper, we specifically focus on AM metallic meta-biomaterials aimed for application as bone substitutes and orthopaedic implants and review the currently available evidence regarding their mechanical performance under quasi-static and cyclic loading conditions. The topology-property relationships are reviewed for regular beam-based lattice structures, sheet-based lattice structures including those based on triply periodic minimal surface, and graded designs. The predictive models used for establishing the topology property relationships including analytical and computational models are covered as well. Moreover, we present an overview of the effects of the AM processes, material type, tissue regeneration, biodegradation, surface bio-functionalization, post-manufacturing (heat) treatments, and loading profiles on the quasi-static mechanical properties and fatigue behavior of AM meta-biomaterials. AM meta-biomaterials exhibiting unusual mechanical properties such as negative Poisson's ratios (auxetic meta-biomaterials), shape memory behavior, and superelasitcity as well as the potential applications of such unusual behaviors (e.g. deployable implants) are presented too. The paper concludes with some suggestions for future research.
机译:添加剂制造(AM)(= 3D打印)和理性设计技术使得具有前所未有的机械,大规模运输和生物学性能的荟萃生物材料的开发。这种荟牙生物材料通常是拓扑上序的,并且通过在不同方向上重复多个常规单元电池来制造晶格结构来设计。建立准确的拓扑性关系对于这些材料至关重要。在本文中,我们专注于旨在作为骨替代品和矫形植入物应用的金属元 - 生物材料,并审查当前可用的证据,并在准静态和循环加载条件下进行机械性能。拓扑结构关系是针对常规光束的晶格结构,基于片材的晶格结构审查,包括基于三个周期性最小表面和分级设计的晶格结构。用于建立包括分析和计算模型的拓扑属性关系的预测模型也被涵盖。此外,我们概述了AM过程,材料型,组织再生,生物降解,表面生物官能化,制造后(热)处理以及加载曲线对AM的静态力学性能和疲劳行为的影响的概述荟萃生物材料。 am Meta-生物材料表现出不寻常的机械性能,如阴性泊松比(辅助元 - 生物材料),形状记忆行为和超级酶,以及这种不寻常的行为的潜在应用也是如此。本文的结论是对未来研究的一些建议。

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