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Cryogenic processing of AL 7050-T7451 alloy for improved surface integrity.

机译:AL 7050-T7451合金的低温处理,以改善表面完整性。

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摘要

Al 7050-T7451 alloy with good combinations of strength, stress corrosion cracking resistance and toughness, is used broadly in the aerospace/aviation industry for fatigue-critical airframe structural components. However, it is also considered as a highly anisotropic alloy as the crack growth behavior along the short transverse direction is very different from the one in the long transverse direction, due to the inhomogeneous microstructure with the elongated grains distributed in the work material used in the sheet/plate applications. Further processes on these materials are needed to improve its mechanical and material properties and broaden its applications.;The material with ultra-fine or nano grains exhibits improved wear and corrosion resistance, higher hardness and better fatigue life, compared to the one with coarse grains. In recent times, the development of novel processing technologies has gained great attention in the research community to enhance the properties of the materials employed in the aerospace, biomedical, precision instrument, automotive, nuclear/power industries. These novel processing technologies modify the microstructure of this alloy and improve the properties.;The aim of this dissertation is to investigate the effects of cryogenic processes, including friction stir processing (FSP), machining and burnishing, on Al 7050-T7451 alloy to solve the inhomogeneity issue and improve its surface integrity. FSP is applied to modify the microstructure of Al 7050-T7451 alloy for achieving more homogeneous structure with near ultra-fine grains (UFG) which were less than 2 microm, particularly in cryogenic FSP with liquid nitrogen as the coolant. Approximately 10% increase could be observed from the hardness measurement from the samples processed by cryogenic FSP, in contrast to dry FSP. Also, the texture change from Al (200) to Al (111) could be achieved in all the samples processed by dry and cryogenic FSP.;Cryogenic machining and burnishing processes were also applied to enhance the surface integrity of the manufactured components with near-UFG structure. The highest cutting temperature was reduced by up to 44.7% due to the rapid cooling effect of liquid nitrogen in cryogenic machining, compared with dry machining. Nano grains were produced in the refined layers induced by cryogenic burnishing. And, up to 35.4% hardness increase was obtained within the layer depth of 200 microm in the cryogenically-burnished surface.;A numerical finite element method (FEM) model was developed for predicting the process performance in burnishing. Less than 10% difference between the experimental and predicted burnishing forces was achieved in the simulation of cryogenic burnishing, and reasonable predictions were also achieved for temperatures, severe plastic deformation (SPD) layers.;Keywords: Cryogenic Friction Stir Processing, Cryogenic Machining, Cryogenic Burnishing, Surface Integrity, Hardness, Microstructure.
机译:具有强度,抗应力腐蚀开裂性和韧性的良好组合的Al 7050-T7451合金广泛用于航空航天工业中,用于疲劳关键型机身结构部件。但是,由于微观结构的不均匀性以及长晶粒分布在加工材料中所使用的材料中,沿短横向方向的裂纹扩展行为与长横向方向的裂纹扩展行为非常不同,因此也被认为是一种高度各向异性的合金。板/板应用。需要对这些材料进行进一步处理,以改善其机械和材料性能并扩大其应用范围。与具有粗晶粒的材料相比,具有超细或纳米晶粒的材料表现出更好的耐磨性和耐腐蚀性,更高的硬度和更长的疲劳寿命。近年来,新型加工技术的发展在研究界引起了极大的关注,以提高在航空航天,生物医学,精密仪器,汽车,核电/电力行业中使用的材料的性能。这些新颖的加工技术改变了该合金的微观结构并改善了其性能。本论文的目的是研究低温工艺(包括摩擦搅拌工艺(FSP),机械加工和抛光)对Al 7050-T7451合金的影响。不均匀性问题并改善其表面完整性。 FSP用于修饰Al 7050-T7451合金的微观结构,以实现具有小于2微米的近超细晶粒(UFG)的更均匀的组织,特别是在以液氮作为冷却剂的低温FSP中。与干式FSP相比,通过低温FSP处理的样品的硬度测量结果可观察到大约10%的增加。同样,在通过干式和低温FSP处理的所有样品中,都可以实现从Al(200)到Al(111)的织构变化。还采用了低温机加工和抛光工艺,以增强制造的零件的表面完整性,使其接近UFG结构。与干式加工相比,由于液氮在低温加工中的快速冷却作用,最高切削温度降低了44.7%。通过低温抛光在精制层中产生纳米晶粒。并且,在深抛光的表面中,在200微米的层深度内,硬度提高了35.4%。;建立了数值有限元方法(FEM)模型,用于预测抛光的加工性能。在模拟低温抛光中,实验抛光力与预计抛光力之间的差异不到10%,并且对温度,严重塑性变形(SPD)层也做出了合理的预测。关键词:低温摩擦搅拌处理,低温加工,低温抛光,表面完整性,硬度,微结构。

著录项

  • 作者

    Huang, Bo.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 239 p.
  • 总页数 239
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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