Ab'/> Influence of alloying element Zn on the microstructural, mechanical and corrosion properties of binary Mg-Zn alloys after severe plastic deformation
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Influence of alloying element Zn on the microstructural, mechanical and corrosion properties of binary Mg-Zn alloys after severe plastic deformation

机译:合金元素Zn对严重塑性变形后二元Mg-Zn合金微观结构,机械和腐蚀性能的影响

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AbstractThis work presents an analysis of the microstructural, mechanical and corrosion properties of two binary Mg-Zn alloys. Mg-6 wt%Zn and Mg-12 wt%Zn cast alloys were subjected to annealing followed by quenching and processed via equal channel angular pressing with applied back-pressure (ECAP-BP). After ECAP-BP, both alloys were thoroughly examined and showed partially recrystallized and highly deformed areas. High-angle annular dark-field imaging revealed a difference in Zn content across the α-Mg matrix of the Mg-12 wt%Zn after ECAP-BP due to the growth of MgZn2nanoparticles. Electron energy-loss spectroscopy (EELS) was carried out to qualify an average Zn content in these areas, and a variation in Zn content up to 2at.% was found. Compression tests revealed mechanical anisotropy and a significant increase in the strength of both alloys after ECAP-BP. The yield strength, σ02, was in the range from 269 to 385MPa depending on the composition and compression axis. The initial state alloys showed yield strengths, σ02, of only 75–150MPa but improved ductility. The corrosion rates of the Mg-Zn alloys in the initial state, evaluated using a hydrogen evolution method in NaCl solution, were higher for Mg-12 wt%Zn. The corrosion rates of both alloys after ECAP-BP were higher than those of the initial state. Light microscopy observations did not reveal any preference for corrosion propagation, including transcrystalline, intercrystalline or interphase corrosion, in any of the materials.Highlights?Mg-Zn alloys are processed by equal channel angular pressing with back-pressure.?The α-Mg matrix consists of highly deformed and partially recrystallized areas.?Zn concentration varies in the α-Mg matrix by up to 2at.%.?The alloys exhibit mechanical anisotropy and a significant increase in strength.?Equal channel angular pressing increases corrosion rate of Mg-Zn alloys.]]>
机译:<![cdata [ 抽象 本作工作提出了两个二元Mg-Zn合金的微观结构,机械和腐蚀性能的分析。 Mg-6wt%Zn和Mg-12wt%Zn铸造合金,然后通过施加的背压(ECAP-BP)通过等电气压制淬火并加工。 ECAP-BP后,彻底检查了两种合金,并显示出部分重结晶和高变形的区域。高角度环形暗场成像在ECAP-BP之后揭示了Mg-12wt%Zn的α-Mg矩阵的Zn含量差异,由于MgZn 2> 2 < / ce:inf>纳米粒子。对电子能量损失光谱(EEL)进行了鉴定这些区域中的平均Zn含量,Zn含量的变化最多可发现。%。压缩试验显示了ECAP-BP后两种合金强度的机械各向异性和显着增加。屈服强度,σ 02 ,其范围为269至385MPa,这取决于组成和压缩轴。初始状态合金显示出屈服强度,σ 02 ,仅为75-150MPa但改善的延展性。 Mg-12wt%Zn的初始状态在初始状态下评价的Mg-Zn合金在初始状态下评价的腐蚀速率较高。 ECAP-BP之后的两种合金的腐蚀速率高于初始状态。光学显微镜观察没有揭示任何材料腐蚀繁殖的任何偏好,包括任何材料中的腐蚀繁殖,包括经晶体,肾间或间腐蚀。 亮点 Mg-Zn合金是通过具有背压的等于沟道角压进行处理。 α-mg矩阵由高度变形和高度变形和部分重新结晶的区域。 Zn浓度在α-mg矩阵中变化到最多2at。%。 合金表现出机械各向异性和强度显着增加。 等通道角度按压Mg-Zn合金的腐蚀速率提高了Mg-Zn合金的腐蚀速率。 ]]>

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