Jiang Fan, Li Cheng, Xu Bin, Tashiro Shinichi, Tanaka Manabu, Chen Shujun
Engineering Research Center of Advanced Manufacturing Technology for Automotive Components, Ministry of Education, Beijing University of Technology, Beijing 100124, China.
Joining and Welding Research Institute, Osaka University, Osaka 5670047, Japan.
Materials (Basel). 2020 Feb 28;13(5):1073. doi: 10.3390/ma13051073.
A hybrid arc-wire welding method based on the variable polarity plasma arc (VPPA) and variable polarity pulse metal inert-gas (VP-PMIG) was proposed for manufacturing aluminum alloys. This paper aims to clarify the decoupling control process of heat and mass transfer in the hybrid welding process. To understand the arc physics and analyze the mass transfer behavior, the hybrid arc shape and droplet cross-sectional area with different parameters were obtained by high speed video photography. Further, the melting area of the base metal was analyzed by macro-metallography of the weld bead cross-section to study the heat transfer. It is found that the hybrid arc shape changes with time. The VPPA main arc is deflected to one side by the VP-PMIG, making the temperature distribution asymmetric, and during the VP-PMIG pulse necking occurs. The cross-sectional area of the droplet is more obviously affected by the VP-PMIG current than the VPPA current. Meanwhile, the VPPA current dominates the melting area of the base metal. Therefore, we conclude that heat transfer to the base metal is from the VPPA, while droplet transfer is mainly controlled by the VP-PMIG arc. These conclusions are confirmed by analyzing the decoupling degree of heat and mass transfer of the base metal by the VPPA and VP-PMIG arc.
提出了一种基于变极性等离子弧(VPPA)和变极性脉冲熔化极惰性气体保护焊(VP-PMIG)的铝合金混合电弧-焊丝焊接方法。本文旨在阐明混合焊接过程中传热与传质的解耦控制过程。为了理解电弧物理特性并分析传质行为,通过高速摄像获得了不同参数下的混合电弧形状和熔滴横截面积。此外,通过焊缝横截面的宏观金相分析了母材的熔化区域,以研究传热情况。研究发现,混合电弧形状随时间变化。VPPA主电弧被VP-PMIG电弧偏转到一侧,导致温度分布不对称,并且在VP-PMIG期间会发生脉冲缩颈。熔滴的横截面积受VP-PMIG电流的影响比VPPA电流更明显。同时,VPPA电流主导母材的熔化区域。因此,我们得出结论,向母材的传热来自VPPA,而熔滴过渡主要由VP-PMIG电弧控制。通过分析VPPA和VP-PMIG电弧对母材传热与传质的解耦程度,证实了这些结论。