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Effect of Mo addition on the microstructure and hardness of ultrafine-grained Ni alloys processed by a combination of cryorolling and high-pressure torsion

机译:钼添加对冷轧与高压扭转相结合处理超细晶Ni合金组织和硬度的影响

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摘要

An investigation was conducted to examine the effect of molybdenum (Mo) content on the grain size, lattice defect structure and hardness of nickel (Ni) processed by severe plastic deformation (SPD). The SPD processing was applied to Ni samples with low (~0.3 at%) and high (~5 at%) Mo concentrations by a consecutive application of cryorolling and high-pressure torsion (HPT). The grain size and the dislocation density were determined by scanning electron microscopy and X-ray line profile analysis, respectively. In addition, the hardness values in the centers, half-radius and peripheries of the HPT-processed disks were determined after ½, 5 and 20 turns. The results show the higher Mo content yields a dislocation density about two times larger and a grain size about 30% smaller. The smallest value of the grain size was ~125 run and the highest measured dislocation density was ~60×10~(14)m~(-2) for Ni-5% Mo. For the higher Mo concentration, the dislocation arrangement parameter was larger indicating a less clustered dislocation structure due to the hindering effect of Mo on the rearrangement of dislocations into low energy configurations. The results show there is a good correlation between the dislocation density and the yield strength using the Taylor equation. The a parameter in this equation is slightly lower for the higher Mo concentration in accordance with the less clustered dislocation structure.
机译:进行了调查,以研究钼(Mo)含量对通过严重塑性变形(SPD)处理的镍(Ni)的晶粒尺寸,晶格缺陷结构和硬度的影响。通过连续施加低温滚动和高压扭转(HPT),对低(〜0.3 at%)和高(〜5 at%)Mo浓度的Ni样品进行SPD处理。晶粒尺寸和位错密度分别通过扫描电子显微镜和X射线线轮廓分析来确定。另外,在1 / 2、5和20转之后确定在HPT处理过的盘的中心,半半径和周边的硬度值。结果表明,较高的Mo含量可使位错密度增大约两倍,而晶粒尺寸减小约30%。 Ni-5%Mo时,晶粒尺寸的最小值最小为〜125 run,最高测得的位错密度为〜60×10〜(14)m〜(-2)。对于较高的Mo浓度,位错排列参数为较大的分子表示位错结构较少,这归因于Mo对位错重排为低能构型的阻碍作用。结果表明,利用泰勒方程,位错密度与屈服强度之间具有良好的相关性。对于较高的Mo浓度,根据较少聚集的位错结构,此方程中的a参数略低。

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  • 来源
    《Materials Science and Engineering》 |2017年第14期|92-100|共9页
  • 作者单位

    Department of Materials Physics, Eoetvoes Lorand University, P.O.B.32, Budapest H-1518, Hungary;

    Materials Research Group, Faculty of Engineering and the Environment, University of Southampton, Southampton SO171BJ, UK;

    Department of Metallurgical and Materials Engineering, Indian Institute of Technology Madras, Chennai 600036, India;

    Materials Research Group, Faculty of Engineering and the Environment, University of Southampton, Southampton SO171BJ, UK;

    Department of Materials Physics, Eoetvoes Lorand University, P.O.B.32, Budapest H-1518, Hungary;

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

    Cryorolling; Hardness; High-pressure torsion; Microstructure; Ni-Mo alloys;

    机译:低温滚动;硬度;高压扭力;微观结构镍钼合金;

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