Qualitative and quantitative analysis of misaligned electrode degradation when welding galvannealed steel

  • Bobin Xing
  • Shaohua Yan
  • Haiyang Zhou
  • Hua Chen
  • Qing H. Qin
ORIGINAL ARTICLE
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Abstract

Electrode misalignment, induced from the flexibility of welding machine gun of spot welder or the potential poor fit-up, leads to the high tendency of expulsion and asymmetric nugget shape. Yet very few studies have focused on the influence of misalignment on the electrode degradation and microstructure evolution of the electrode, especially when welding galvannealed steel. This paper investigates the degradation of such misaligned electrodes when spot welding galvannealed steel. To reveal its mechanism, the electrodes welded with galvannealed steel were examined after 10 and 200 welds with the slight misalignment. The electrodes were found to experience more severe degradation compared to the results from previous studies with the aligned electrodes. The results from energy-dispersive spectrum (EDS) analysis further confirmed that δ-Fe–Zn phase, a barrier from galvannealed coating for isolating Cu and Zn formation, was not uniformly distributed on the electrode tip. As a result, the initial electrode pitting took place after 50 welds. Furthermore, electron backscatter diffraction (EBSD) quantitatively analyzed the recrystallized grains of the worn electrodes, which underwent rotation under the asymmetric pressure distribution under misalignment. The calculated Taylor factor via EBSD mapping also indicated the declined portion of <111> grains accounted for the low deformation resistance of the worn electrode. Finally, electrode displacements were simultaneously collected in the experiments, of which the peak values accurately predicted the heat generation for each spot weld and accordingly predicted the electrode life.

Keywords

Resistance spot welding Electrode wear Electrode misalignment Electrode displacement Electron backscatter diffraction 

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Notes

Acknowledgements

The authors would like to acknowledge the technical assistance from the Centre for Advanced Microscopy at the Australian National University. The authors would like to acknowledge Dr. Yi Xiao from the Australian National University for the discussion.

Supplementary material

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Copyright information

© Springer-Verlag London Ltd., part of Springer Nature 2018

Authors and Affiliations

  • Bobin Xing
    • 1
  • Shaohua Yan
    • 1
  • Haiyang Zhou
    • 1
  • Hua Chen
    • 2
  • Qing H. Qin
    • 1
  1. 1.Research School of EngineeringThe Australian National UniversityActonAustralia
  2. 2.Center for Advanced MicroscopyThe Australian National UniversityActonAustralia

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