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LASER-LASER HYBRID WELDING FOR JOINING OF CHALLENGING MATERIALS

机译:激光激光混合焊接,用于加入具有挑战性的材料

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Modern steels containing micro-alloying constituents offer improved performance due to greater strength to weight ratio, but they are more challenging to weld and require costly post weld heat treatment. Lasers with their flexibility in terms of delivered energy can be used as a very versatile heat source where the energy can be tailored spatially and temporally according to the needs of a particular material. Normally laser welding is used in deep penetration regime to improve productivity, but in alloyed steels this leads to high cooling rates and unacceptable mechanical properties. A laser-laser hybrid welding process with two independent laser beams, combining the deep penetration capability of keyhole welding and the smooth bead profile of conduction regime, was developed in this work. The power density and the total applied energy of each laser beam could be controlled independently to tailor the transient thermal cycle during the welding process. Thick section welds were produced with better weld profile, tolerance to fit-up and control of microstructural constituent compared with standard single-beam laser welding. The process also enables efficient addition of filler wire with better meltpool stability, and lower spatter than standard laser-arc based hybrid processes. In addition, it has been demonstrated that, by changing the laser application modes, the same laser setup can be used to apply in-situ heat treatment to welded components.
机译:含有微合金成分的现代钢由于重量比强度较大,而且焊接更具挑战性,并且需要昂贵的焊接热处理。在交付能量方面具有灵活性的激光可以用作非常多功能的热源,其中能量可以根据特定材料的需要在空间上且时间上定制。通常激光焊接用于深度渗透制度以提高生产率,但在合金钢中,这导致高冷却速率和不可接受的机械性能。激光激光混合焊接工艺具有两个独立的激光束,在这项工作中开发了锁孔焊接的深层渗透能力和传导制度的平滑珠子轮廓。每个激光束的功率密度和总施加能量可以独立地控制,以在焊接过程中定制瞬态热循环。与标准单梁激光焊接相比,通过更好的焊接型材,耐受性和控制微观结构成分的耐受性,提供厚截面焊缝。该过程还使得能够有效地加入具有更好的Meltpool稳定性的填充丝,并且比基于标准激光电弧的混合过程更低的喷溅。另外,已经证明,通过改变激光应用模式,可以使用相同的激光设置来对焊接部件对原位热处理应用。

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