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首页> 外文期刊>Journal of Materials Science >Manufacturing process of AA5083/nano-gamma Al2O3 localized composite metal foam fabricated by friction stir processing route (FSP) and microstructural characterization
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Manufacturing process of AA5083/nano-gamma Al2O3 localized composite metal foam fabricated by friction stir processing route (FSP) and microstructural characterization

机译:AA5083 /纳米γAl2O3局部复合金属泡沫的制造过程通过摩擦搅拌加工途径(FSP)和微观结构表征制造

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摘要

The aluminum alloy AA5083 is a technologically important structural alloy as it is lightweight, with outstanding weldability and formability, moderate corrosion resistance and strength, making it suitable for a wide range of marine and transportation applications. In the present study, AA5083/nano-gamma Al2O3 composite metal foam was fabricated using a friction stir processing route (FSP). More precisely, the paper presents a first attempt to use grooves for the integration of the foaming and stabilizing agent on the metal foam precursor by FSP. The implementation of grooves allows to control the amount of foaming, integrates the stabilizing particles within the precursor and permits the production of localized metal foams. Unlike the commonly used manufacturing processes, only one plate is required for the production of the precursor sample in the proposed process. Therefore, this process can be easily implemented in the industrial sector. Furthermore, gamma-Al2O3 nanostructured reinforcement, which is characterized by increased interfacial energy, was utilized as a stabilizing agent. The precursor specimens were manufactured by mixing blowing agent powder (0.4% w/w TiH2) and stabilization agent nanopowder (2% w/w gamma-Al2O3) into the 5083 aluminum alloy matrix using FSP. The effects of the number of FSP passes and the foaming conditions (holding temperature and time) on the pore density, morphology and distribution were investigated. The microstructure and porosity evolution of the so-obtained metal foam was also examined and analyzed. Results indicate that, following the foaming procedure, a porosity of 60% and an equivalent pore diameter ranging from 0.2 to 3.3 mm can be achieved. Moreover, the microstructure was found to be closely related to microhardness distribution perpendicular to the traversing direction of the FSP tool for both precursor and foamed specimens.
机译:铝合金AA5083是一种技术重要的结构合金,如重量轻,具有出色的可焊性和可塑造性,适度的耐腐蚀性和强度,适用于各种海洋和运输应用。在本研究中,使用摩擦搅拌加工途径(FSP)制造AA5083 /纳米-Gamma Al2O3复合金属泡沫。更确切地说,本文提出了使用FSP将发泡和稳定剂整合到金属泡沫前体上的凹槽的首次尝试。凹槽的实施允许控制发泡量,整合前体内的稳定颗粒,并允许生产局部金属泡沫。与常用的制造工艺不同,在所提出的方法中仅生产前体样品所需的板。因此,该过程可以在工业领域容易地实施。此外,γ-Al2O3纳米结构增强件,其特征在于界面能量增加,用作稳定剂。使用FSP将发泡剂粉末(0.4%w / w tih2)和稳定剂纳米粉末(2%w / wγ-Al2O3)混合到5083铝合金基质中,制造前体标本。研究了FSP的数量和发泡条件(保持温度和时间)对孔密度,形态和分布的影响。还检查和分析了所以所得金属泡沫的微观结构和孔隙率展现。结果表明,在发泡过程之后,可以实现60%的孔隙率和0.2至3.3mm的孔隙率和等同的孔径。此外,发现微观结构与垂直于前体和发泡样品的FSP工具的横向的微硬度分布密切相关。

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  • 来源
    《Journal of Materials Science》 |2018年第5期|共19页
  • 作者单位

    Natl Tech Univ Athens Sch Mech Engn Mfg Technol Sect 9 Heroon Polytech St Zografos 15780 Greece;

    Natl Tech Univ Athens Sch Mech Engn Mfg Technol Sect 9 Heroon Polytech St Zografos 15780 Greece;

    Natl Tech Univ Athens Sch Naval Architecture &

    Marine Engn Shipbldg Technol Lab 9 Heroon Polytech St Zografos 15780 Greece;

    Natl Tech Univ Athens Sch Mech Engn Mfg Technol Sect 9 Heroon Polytech St Zografos 15780 Greece;

    Natl Tech Univ Athens Sch Mech Engn Mfg Technol Sect 9 Heroon Polytech St Zografos 15780 Greece;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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