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用于生物医学应用的镁基合金性能综述。

A review on properties of magnesium-based alloys for biomedical applications.

机构信息

School of Mechanical Engineering, Kalinga Institute of Industrial Technology (Deemed to be University), Bhubaneswar, 751024, India.

Department of Advanced Materials Technology, CSIR-Institute of Minerals and Materials Technology (IMMT), Bhubaneswar-751013, India.

出版信息

Biomed Phys Eng Express. 2022 May 17;8(4). doi: 10.1088/2057-1976/ac6d81.

Abstract

With changing lifestyles, the demand for bone implantation has been increasing day by day. The deficiency of nutritious elements within the human body results in certain diseases like osteoporosis, rickets, and other skeletal disorders; lack of physical activities; and the increasing number of accidents are the primary reasons for bone damage/fracture. Metallic implants made up of chrome steel, cobalt-based alloys, and titanium-based alloys are being majorly used worldwide owing to their high strength and high corrosion resistance which makes them permanent orthopedic bioimplant materials, however, they display a stress-shielding effect and it also requires an implant removal surgery. Thus, these problems can be addressed through the employment of biodegradable materials. Among the available biodegradable metallic materials, Mg alloys have been identified as a prospective orthopedic implant material. These alloys are biodegradable as well as biocompatible, however, they experience a relatively higher rate of degradation limiting their usability as implant material. This study attempts to comprehensively assess the effects of various alloying elements such as Ca, Zn, Sn, Mn, Sr and Rare earth elements (REEs) on the mechanical and degradation behavior (bothand) of Mg alloys. Since the microstructure, mechanical properties and degradation response of the Mg alloys are dependent on the processing route, hence detailed processing- property database of different Mg alloys is provided in this paper.

摘要

随着生活方式的改变,对骨植入物的需求日益增加。人体内营养元素的缺乏会导致某些疾病,如骨质疏松症、佝偻病和其他骨骼疾病;缺乏体育活动;以及越来越多的事故是导致骨骼损伤/骨折的主要原因。由于高强度和高耐腐蚀性,由铬钢、钴基合金和钛基合金制成的金属植入物在世界范围内被广泛使用,使其成为永久性骨科生物植入材料,但它们会产生应力屏蔽效应,并且还需要进行植入物去除手术。因此,可以通过使用可生物降解材料来解决这些问题。在可用的可生物降解金属材料中,镁合金已被确定为一种有前途的骨科植入材料。这些合金具有生物降解性和生物相容性,但它们的降解速度相对较高,限制了它们作为植入材料的可用性。本研究试图全面评估各种合金元素(如 Ca、Zn、Sn、Mn、Sr 和稀土元素 (REE))对镁合金的机械和降解行为(包括力学性能和降解性能)的影响。由于镁合金的微观结构、力学性能和降解响应取决于加工路线,因此本文提供了不同镁合金详细的加工-性能数据库。

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