The influence of severe plastic deformation on mechanical properties of pure zinc

M. Polenok, E. Khafizova, R. Islamgaliev
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引用次数: 1

Abstract

Biodegradable materials, which have the ability to resorb in the body, are new and promising materials for medical implants. Currently, scientists carry out the investigations according to three directions: Mg, Fe, and Zn alloys. Zinc-based alloys and zinc have good solubility in the body, which meets the clinical requirements of implants. However, pure zinc has low mechanical properties, including hardness and tensile strength. Therefore, at present, the world scientific community is seeking ways to improve the properties of pure zinc by alloying. Another known approach is the ultrafine-grained (UFG) structure formation by the severe plastic deformation (SPD) methods, which are based on the large plastic deformations under high pressure and relatively low homologous temperatures. In this work, the authors studied the influence of high pressure torsion of pure zinc with various numbers of revolutions. The paper presents calculations of shear deformation after SPD. The authors investigated the dependence of mechanical properties and microstructure on the deformation degree. Tension tests at room temperature were carried out, and microhardness was measured. The authors studied the structure using scanning electron microscopy and optics. The study identified that the use of high pressure torsion leads to an increase in the tensile strength of pure zinc up to 140 MPa and ductility up to 40 % resulting from dynamic recrystallization.
剧烈塑性变形对纯锌力学性能的影响
生物可降解材料是一种具有体内再吸收能力的新型医用植入材料。目前,科学家们主要从镁、铁、锌合金三个方向进行研究。锌基合金和锌在体内具有良好的溶解度,符合临床种植体的要求。然而,纯锌具有较低的机械性能,包括硬度和抗拉强度。因此,目前世界科学界正在寻求通过合金化来改善纯锌性能的方法。另一种已知的方法是通过剧烈塑性变形(SPD)方法形成超细晶(UFG)结构,这种方法是基于高压和相对较低的同源温度下的大塑性变形。本文研究了不同转数对纯锌高压扭转的影响。本文介绍了SPD后剪切变形的计算方法。研究了变形程度对合金力学性能和显微组织的影响。进行了室温拉伸试验,并测量了显微硬度。利用扫描电镜和光学技术对其结构进行了研究。研究发现,使用高压扭转可以将纯锌的抗拉强度提高到140 MPa,并且由于动态再结晶而使延展性提高到40%。
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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