Microstructural and Mechanical Characterization of the Mg Based Functionally Graded Material Fabricated through Centrifugal Casting Process

M Anil Kumar, V. Srinivasan, P. R. Raju
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Abstract

Objectives: The aim of this study is to examine the mechanical and microstructural properties of functionally graded material (FGM) composites based on magnesium (Mg). Magnesium alloys are commonly employed in the development of biomaterials for implant applications owing to their favorable corrosion properties. The research objective is to study the microstructural and mechanical properties and produce Zn/Mo reinforced functionally graded magnesium composites using the centrifugal casting. Methods: A triple layered cylindrical shaped Mg based functionally graded material (FGM) was fabricated through a centrifugal process from (Mg (80%) +Zn (10%) + Mo (10%) alloy. The developed FGMs have been analyzed for their mechanical and microstructural characteristics. The microstructure was analyzed via the OM AND SEM microscope. It is identified that denser particle molybdenum (Mo) have influenced the mechanical and microstructural characteristics. Findings: Results recommend that, all the three layered testing’s, Mg (80%) +Zn (10%) + Mo (10%) composite exhibited favorable mechanical and microstructural properties. It is identified that denser particle of Mo which is influenced the microstructural characteristics. The alteration in micro hardness in the direction of centrifugal force is observed, and it is perceived that top surface has higher hardness as compared to the middle and bottom region. The flexural strength of top surface sample is 254 MPa, which is 10% greater than middle surface sample and 12.36% greater than bottom surface sample. Compressive strength of 385 MPa, surpassing the middle surface sample by 17.11% and the bottom surface sample by 19.36%. Novelty: In this study, a novel three-layered centrifugal casting technique was devised. Owing to its rapid degradability, the anticipated duration of the implants within the human body is significantly shorter in comparison to alternative biomaterials such as Titanium and Stainless steel. Furthermore, the findings from the conducted tests strongly advocate for the utilization of this technique in biomedical implantations. Keywords: Functionally graded material (FGM), Centrifugal casting, Mechanical properties, Microstructural behavior and bioimplants
通过离心铸造工艺制作的镁基功能分级材料的微观结构和力学特征
研究目的本研究旨在探讨基于镁(Mg)的功能分级材料(FGM)复合材料的机械和微观结构特性。由于镁合金具有良好的腐蚀性能,因此常用于开发植入应用的生物材料。研究目的是研究微观结构和机械性能,并利用离心铸造法生产 Zn/Mo 增强功能分级镁复合材料。研究方法通过离心工艺,利用镁(80%)+锌(10%)+钼(10%)合金制造出三层圆柱形镁基功能分级材料(FGM)。对所开发的 FGM 进行了机械和微观结构特性分析。微观结构通过光学显微镜和扫描电镜进行分析。结果表明,较密集的钼(Mo)颗粒影响了其机械和微观结构特征。研究结果:结果表明,所有三层测试、镁(80%)+锌(10%)+钼(10%)复合材料都表现出良好的机械和微观结构特性。结果表明,密度较大的钼颗粒影响了微结构特性。观察到微观硬度在离心力方向上的变化,与中间和底部区域相比,上表面的硬度更高。顶面样品的抗弯强度为 254 兆帕,比中间表面样品高 10%,比底面样品高 12.36%。抗压强度为 385 兆帕,比中间表面样品高出 17.11%,比底部表面样品高出 19.36%。新颖性:本研究设计了一种新颖的三层离心浇铸技术。由于其快速降解性,与钛和不锈钢等其他生物材料相比,植入物在人体内的预期持续时间大大缩短。此外,测试结果也有力地证明了这种技术在生物医学植入中的应用。关键词功能分级材料(FGM)、离心铸造、机械性能、微结构行为和生物植入物
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