Mg-Based Composites for Biomedical Applications

M. Castro, D. R. Lopes, Leonardo Viana Dias
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引用次数: 2

Abstract

Magnesium (Mg) is a promising material for producing temporary orthopedic implants, since it is a biodegradable and biocompatible metal which density is very similar to that of the bones. Another benefit is the small strength mismatch when compared to other biocompatible metals, what alleviates stress-shielding effects between bone and the implant. To take advantage of the best materials properties, it is possible to combine magnesium with bioactive ceramics and tailor composites for medical applications with improved biocompatibility, controllable degradation rates and the necessary mechanical properties. To properly insert bioactive reinforcement into the metallic matrix, the fabrication of these composites usually involves at least one high temperature step, as casting or sintering. Yet, recent papers report the development of Mg-based composites at room temperature using severe plastic deformation. This chapter goes through the available data over the development of Mg-composites reinforced with bioactive ceramics, presenting the latest findings on the topic. This overview aims to identify the major influence of the processing route on matrix refinement and reinforcement dispersion, which are critical parameters to determine mechanical and corrosion properties of biodegradable Mg-based composites.
生物医学应用的镁基复合材料
镁(Mg)是一种具有生物可降解和生物相容性的金属,其密度与骨骼的密度非常相似,是一种很有前途的用于制造临时骨科植入物的材料。另一个好处是,与其他生物相容性金属相比,它的强度不匹配较小,减轻了骨和植入物之间的应力屏蔽效应。为了利用最好的材料性能,可以将镁与生物活性陶瓷结合起来,为医疗应用量身定制复合材料,提高生物相容性,可控降解率和必要的机械性能。为了正确地将生物活性增强物插入金属基体,这些复合材料的制造通常至少涉及一个高温步骤,如铸造或烧结。然而,最近的论文报道了室温下使用严重塑性变形的镁基复合材料的发展。本章回顾了生物活性陶瓷增强镁基复合材料的发展现状,介绍了该领域的最新研究成果。本综述旨在确定加工路线对基体细化和增强分散的主要影响,这是决定可生物降解mg基复合材料力学和腐蚀性能的关键参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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