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Al-Mg合金电子束填丝焊接头的显微组织与力学性能

王永鹏 王少刚 江恒 徐俊珂

王永鹏, 王少刚, 江恒, 徐俊珂. Al-Mg合金电子束填丝焊接头的显微组织与力学性能[J]. 材料开发与应用, 2022, 37(6): 47-54.
引用本文: 王永鹏, 王少刚, 江恒, 徐俊珂. Al-Mg合金电子束填丝焊接头的显微组织与力学性能[J]. 材料开发与应用, 2022, 37(6): 47-54.
WANG Yongpeng, WANG Shaogang, JIANG Heng, XU Junke. Microstructure and Mechanical Property of Al-Mg Alloy Joint by Electron Beam Welding with Filler Wire[J]. Development and Application of Materials, 2022, 37(6): 47-54.
Citation: WANG Yongpeng, WANG Shaogang, JIANG Heng, XU Junke. Microstructure and Mechanical Property of Al-Mg Alloy Joint by Electron Beam Welding with Filler Wire[J]. Development and Application of Materials, 2022, 37(6): 47-54.

Al-Mg合金电子束填丝焊接头的显微组织与力学性能

详细信息
    作者简介:

    王永鹏,男,1995年生,硕士研究生,研究方向为铝合金的电子束焊接。E-mail:wyp 906861093@163.com

  • 中图分类号: TG457.14

Microstructure and Mechanical Property of Al-Mg Alloy Joint by Electron Beam Welding with Filler Wire

  • 摘要: 采用ER5183焊丝作为填充材料,对厚度为2 mm的Al-Mg合金进行真空电子束填丝焊接,并对焊接接头的微观组织及力学性能进行分析测试。结果表明,在合适的焊接工艺条件下,获得的Al-Mg合金接头焊缝成形良好。微观分析显示,接头熔合区为柱状晶和等轴状枝晶组织,主要由α(Al)基体相和β(Al3Mg2)强化相组成,焊缝中存在大量的缠结位错和第二相粒子。力学性能测试表明,与母材区的硬度相比,接头熔合区的硬度有所降低。在最佳工艺条件下获得接头的抗拉强度为311.2 MPa,达母材抗拉强度的96.9%。接头拉伸断口表面分布的韧窝数量较多,呈明显的韧性断裂特征。

     

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  • 被引次数: 0
出版历程
  • 收稿日期:  2022-05-06
  • 网络出版日期:  2023-01-12

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