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Tailoring microstructure and tensile properties of Mg-Si alloys varying solidification cooling rate and Si content

机译:Mg-Si合金的剪裁微观结构和拉伸性能不同凝固冷却速率和Si含量

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摘要

Mg-Si alloys were investigated in terms of their microstructural characteristics and tensile properties, by varying solidification cooling rate and Si content. This type of investigation becomes essential since these alloys are considered potentially base alloys for new biocompatible and biodegradable materials that might be used to produce a variety of temporary implants. This because Silicon (Si) has been recognized as a vital mineral in the human body, aiding both the healing process and the development of the immune system. Despite these characteristics provided by Si, Mg-Si alloys typically have low ductility and tensile strength due to the presence of coarse Mg_2Si particles. Therefore, efforts to understand and improve these properties are most welcome. In order to deepen the knowledge of these alloys, the present research analyzed three Mg-Si alloys: Mg-0.6 wt% Si, Mg-1.3 wt% Si and Mg-1.7 wt% Si regarding their microstructures and phase's morphologies produced in a broad range of solidification rates' samples and their corresponding tensile properties. The predominance of dendritic arrangement with the interdendritic region composed of the (Mg + Mg_2Si) eutectic was noted for the Mg-0.6 wt % Si and Mg-1.7 wt% Si alloys. Eutectic cells prevailed for the Mg-1.3 wt% Si alloy, with cells varying from squarer and hexagonal to a more rounded shape with the decrease in cooling rate. Experimental influences of the microstructural parameters on the tensile properties have been verified. Except for the Mg-1.3 wt% Si alloy, the tensile properties of the other alloys were found to be roughly independent of the dendritic length scales in the verified ranges. In general, increased Si content led to a reduction in strength and ductility, probably due to the increase in the fraction of Mg_2Si particles, which is an effective phase in the stress concentration during loading, shortening the break.
机译:通过改变凝固冷却速率和Si含量,根据其微观结构特性和拉伸性能来研究Mg-Si合金。这种类型的研究变得必不可少,因为这些合金被认为是用于产生各种临时植入物的新型生物相容性和可生物降解材料的潜在基础合金。这是因为硅(Si)已被认为是人体中的重要矿物质,帮助治疗过程和免疫系统的发展。尽管通过Si提供了这些特性,但由于存在粗mg_2Si颗粒,Mg-Si合金通常具有低延展性和拉伸强度。因此,最受欢迎的努力了解和改善这些性质。为了深化这些合金的知识,本研究分析了三种Mg-Si合金:Mg-0.6wt%Si,Mg-1.3wt%Si和Mg-1.7wt%Si,其微观结构和宽度产生的相形态凝固率的样品范围及其相应的拉伸性能。用由(Mg + Mg_2SI)共晶组成的树突式布置的统称为Mg-0.6wt%Si和Mg-1.7wt%Si合金。用于Mg-1.3wt%Si合金的共晶细胞普遍存在,细胞从平分器和六边形变化到更圆形的形状,冷却速率降低。已经验证了微观结构参数对拉伸性能的实验影响。除了Mg-1.3wt%Si合金外,发现其它合金的拉伸性质大致与验证的范围内的树枝状长度尺度大致无关。通常,增加的Si含量导致强度和延展性的降低,这可能是由于Mg_2SI颗粒的级分的增加,这在负载期间的应力浓度的有效相位,缩短断裂。

著录项

  • 来源
    《Materials Science and Engineering》 |2021年第21期|141905.1-141905.10|共10页
  • 作者单位

    Federal University of Sao Carlos Graduate Program in Materials Science and Engineering 13565-905 Sao Carlos SP Brazil;

    Department of Manufacturing and Materials Engineering University of Campinas 13083-860 Campinas SP Brazil;

    Federal University of Sao Carlos Graduate Program in Materials Science and Engineering 13565-905 Sao Carlos SP Brazil Department of Materials Engineering Federal University of Sao Carlos UFSCar 13565-905 Sao Carlos SP Brazil;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mg alloys; Mg-Si; Solidification; Microstructure; Tensile properties;

    机译:Mg合金;mg-si;凝固;微观结构;拉伸性质;

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