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用于电弧增材制造的高性能Al-Zn-Mg-Cu合金的表征

Characterisation of a High-Performance Al-Zn-Mg-Cu Alloy Designed for Wire Arc Additive Manufacturing.

作者信息

Morais Paulo J, Gomes Bianca, Santos Pedro, Gomes Manuel, Gradinger Rudolf, Schnall Martin, Bozorgi Salar, Klein Thomas, Fleischhacker Dominik, Warczok Piotr, Falahati Ahmad, Kozeschnik Ernst

机构信息

Instituto de Soldadura e Qualidade, Av. Prof. Dr. Cavaco Silva, 33, 2740-120 Porto Salvo, Portugal.

LKR Light Metals Technologies Ranshofen, Austrian Institute of Technology, Lamprechtshausenerstraße 61, 5282 Ranshofen-Braunau, Austria.

出版信息

Materials (Basel). 2020 Apr 1;13(7):1610. doi: 10.3390/ma13071610.

Abstract

Ever-increasing demands of industrial manufacturing regarding mechanical properties require the development of novel alloys designed towards the respective manufacturing process. Here, we consider wire arc additive manufacturing. To this end, Al alloys with additions of Zn, Mg and Cu have been designed considering the requirements of good mechanical properties and limited hot cracking susceptibility. The samples were produced using the cold metal transfer pulse advanced (CMT-PADV) technique, known for its ability to produce lower porosity parts with smaller grain size. After material simulations to determine the optimal heat treatment, the samples were solution heat treated, quenched and aged to enhance their mechanical performance. Chemical analysis, mechanical properties and microstructure evolution were evaluated using optical light microscopy, scanning electron microscopy, energy dispersive X-ray spectroscopy, X-ray fluorescence analysis and X-ray radiography, as well as tensile, fatigue and hardness tests. The objective of this research was to evaluate in detail the mechanical properties and microstructure of the newly designed high-performance Al-Zn-based alloy before and after ageing heat treatment. The only defects found in the parts built under optimised conditions were small dispersed porosities, without any visible cracks or lack of fusion. Furthermore, the mechanical properties are superior to those of commercial 7xxx alloys and remarkably independent of the testing direction (parallel or perpendicular to the deposit beads). The presented analyses are very promising regarding additive manufacturing of high-strength aluminium alloys.

摘要

工业制造对机械性能的要求不断提高,这就需要开发针对各自制造工艺设计的新型合金。在此,我们考虑电弧增材制造。为此,在设计添加锌、镁和铜的铝合金时,考虑了良好机械性能和有限的热裂纹敏感性的要求。使用冷金属过渡脉冲先进(CMT-PADV)技术生产样品,该技术以能够生产具有较小晶粒尺寸的低孔隙率零件而闻名。在进行材料模拟以确定最佳热处理后,对样品进行固溶热处理、淬火和时效处理,以提高其机械性能。使用光学显微镜、扫描电子显微镜、能量色散X射线光谱、X射线荧光分析和X射线射线照相术,以及拉伸、疲劳和硬度测试来评估化学分析、机械性能和微观结构演变。本研究的目的是详细评估新设计的高性能铝锌基合金在时效热处理前后的机械性能和微观结构。在优化条件下制造的零件中发现的唯一缺陷是小的分散孔隙,没有任何可见裂纹或未熔合。此外,其机械性能优于商用7xxx合金,并且与测试方向(平行或垂直于熔敷焊道)显著无关。所呈现的分析对于高强度铝合金的增材制造非常有前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3d7a/7178362/d32a9e036c2b/materials-13-01610-g001.jpg

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