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Microstructure and Tensile Behavior of Laser Arc Hybrid Welded Dissimilar Al and Ti Alloys

机译:激光电弧混合焊接异种铝和钛合金的组织和拉伸行为

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Fiber laser-cold metal transfer arc hybrid welding was developed to welding-braze dissimilar Al and Ti alloys in butt configuration. Microstructure, interface properties, tensile behavior, and their relationships were investigated in detail. The results show the cross-weld tensile strength of the joints is up to 213 MPa, 95.5% of same Al weld. The optimal range of heat input for accepted joints was obtained as 83–98 J·mm−1. Within this range, the joint is stronger than 200 MPa and fractures in weld metal, or else, it becomes weaker and fractures at the intermetallic compounds (IMCs) layer. The IMCs layer of an accepted joint is usually thin and continuous, which is about 1μm-thick and only consists of TiAl2 due to fast solidification rate. However, the IMCs layer at the top corner of fusion zone/Ti substrate is easily thickened with increasing heat input. This thickened IMCs layer consists of a wide TiAl3 layer close to FZ and a thin TiAl2 layer close to Ti substrate. Furthermore, both bead shape formation and interface growth were discussed by laser-arc interaction and melt flow. Tensile behavior was summarized by interface properties.
机译:开发了光纤激光冷金属转移电弧混合焊接技术,以对接方式焊接异种的Al和Ti合金。详细研究了微观结构,界面性能,拉伸行为及其关系。结果表明,该接头的交叉焊接抗拉强度高达213 MPa,是相同Al焊缝的95.5%。获得的可接受接头的最佳热输入范围为83–98 J·mm -1 。在此范围内,接头强度大于200 MPa,焊缝金属破裂,否则,接头变弱,金属间化合物(IMC)层破裂。可接受的接头的IMCs层通常很薄且连续,厚度约为1μm,并且由于凝固速度快而仅由TiAl 2 组成。然而,随着热量输入的增加,融合区/ Ti基板顶部拐角处的IMC层很容易增厚。该增厚的IMCs层由靠近FZ的宽TiAl 3 层和靠近Ti衬底的薄TiAl 2 层组成。此外,通过激光-电弧相互作用和熔体流动讨论了珠形状的形成和界面的生长。拉伸行为通过界面特性进行了总结。

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