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首页> 外文期刊>Journal of Materials Processing Technology >Effect of parallel deposition path and interface material flow on resulting microstructure and tensile behavior of Al-Mg-Si alloy fabricated by additive friction stir deposition
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Effect of parallel deposition path and interface material flow on resulting microstructure and tensile behavior of Al-Mg-Si alloy fabricated by additive friction stir deposition

机译:平行沉积路径和界面材料流动对摩擦搅拌沉积沉积的基础组织的微观结构和拉伸行为

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摘要

In this paper, the effect of overlapping parallel additive depositions on microstructure and mechanical properties in Additive Friction Stir Deposition (AFS-D) was examined. In particular, the AFS-D process was employed to make parallel depositions of AA6061 with a 6.35 mm overlap to effectively bond the two parallel layers. The AFS-D process draws on similar physics to friction stir welding in that frictional heat and plastic deformation is exploited to deposit metallic materials from the center of a hollow rotating tool as it traverses across the build table to produce consecutive metallurgically bonded layers. In this work, the microstructural aspects of the 6.35 mm overlapping raster interface were characterized using optical and scanning electron microscopy. Aluminum oxide particles were observed at the raster interface, which were located at layer boundaries. Additional grain refinement was also apparent as a direct result of multiple stirring passes within the overlapping deposition region. Mechanical characterization via microindentation and monotonic tensile testing observed a hardness gradient in the overlapping region, but the parallel deposition layers exhibited comparable tensile strength to a single row of deposited AA6061. The influence of existing oxides on the mechanical results was observed to have limited effect on the properties longitudinally across the raster. This study determined that parallel layers of AA6061 can be successfully deposited via the AFS-D technique. The resulting deposit exhibited a strong metallurgical bond across the parallel layers despite the presence of surface oxidation on the unprepared feedstock and substrate.
机译:本文研究了添加剂搅拌摩擦沉积(AFS-D)中重叠平行添加剂沉积对微观结构和力学性能的影响。特别是,采用AFS-D工艺对AA6061进行平行沉积,重叠6.35 mm,以有效粘合两个平行层。AFS-D工艺利用了与搅拌摩擦焊相似的物理原理,即利用摩擦热和塑性变形,在空心旋转工具穿过制造台时,从其中心沉积金属材料,以产生连续的冶金结合层。在这项工作中,使用光学和扫描电子显微镜对6.35 mm重叠光栅界面的微观结构进行了表征。在光栅界面观察到氧化铝颗粒,这些颗粒位于层边界。由于重叠沉积区域内的多次搅拌过程,额外的晶粒细化也很明显。通过显微压痕和单调拉伸试验进行的机械表征观察到重叠区域的硬度梯度,但平行沉积层显示出与单排沉积AA6061相当的拉伸强度。观察到现有氧化物对机械结果的影响对光栅纵向性能的影响有限。本研究确定,通过AFS-D技术可以成功沉积AA6061的平行层。尽管未准备好的原料和基体上存在表面氧化,但由此产生的沉积物在平行层上表现出强烈的冶金结合。

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