Effect of external magnetic field on resistance spot welding of aluminium to steel

Author(s):  
Shanqing Hu ◽  
Amberlee S. Haselhuhn ◽  
Yunwu Ma ◽  
Zhuoran Li ◽  
Lin Qi ◽  
...  
Author(s):  
Qi Shen ◽  
YongBing Li ◽  
ZhongQin Lin ◽  
GuanLong Chen

Electromagnetic stirring (EMS) has been demonstrated to have significant effect on molten metal in terms of crystal orientation, grain refinement and macro appearance of solidified structures by making use of Lorentz force. In the present study, resistance spot welding (RSW) process of 1.25 mm thick dual-phase steel DP780 with and without the external magnetic field applied has been experimentally investigated. Impacts of the EMS method on nugget appearance, quasi-static performance, fatigue life, and fracture morphology have been systematically discussed. Results of the metallographic tests showed that, compared with the traditional resistance spot weld (RSW weld), the weld under the EMS effect (EMS-RSW weld) was wider and thinner with an obvious increase in nugget diameter. Besides, within the EMS-RSW weld, crystal orientation along the faying surface of workpieces was less directional and the grains were refined. Slightly higher uniformity in the fusion zone and more notable softening in the heat affected zone of the EMS-RSW weld were observed by microhardness tests. With regard to the mechanical properties, both tensile-shear and cross-tension samples of the EMS-RSW welds exhibited higher ultimate failure loads and longer elongations at the failure points than that of the traditional RSW welds. The EMS-RSW welds also showed longer fatigue life under dynamic tensile-shear loads, especially in high cycle conditions. Furthermore, the EMS-RSW welds exhibited a higher frequency of button-pullout fractures under the welding current close to the minimum current that the traditional RSW welds required to prevent weld interfacial fractures under quasi-static tensile-shear loads. Even if both types of the welds exhibited interfacial fractures under a relatively weak welding current, more dimples were found in the fracture surfaces of the EMS-RSW welds than that of the traditional RSW welds. It can be concluded that the external magnetic field during RSW process could improve weld performance of DP780 by enhancing weld strength and plasticity. EMS could be an effective method to improve the weldability in RSW of advanced high strength steel, ultra high strength steel, and even light metals.


2020 ◽  
Vol 143 (3) ◽  
Author(s):  
Lin Qi ◽  
Fangzhou Li ◽  
Qingxin Zhang ◽  
Ye Xu ◽  
Xiaohui Han ◽  
...  

Abstract Magnetically assisted resistance spot welding (MA-RSW), which uses a pair of mutually repulsive ring-shaped axially magnetized magnets, has been demonstrated to have significant effect on weld quality of high strength steels and light metals. However, in manufacturing of metro car bodies, single-sided resistance spot welding processes is frequently adopted to achieve better surface quality, which poses a big challenge to the traditional double-sided MA-RSW apparatus. In this study, single-sided MA-RSW apparatus with four arc-shaped radially magnetized permanent magnets was developed to adapt the demand of the single-sided RSW process, and 1.5 + 2.5 mm austenitic stainless steels (ASSs) are used to evaluate its effectiveness in terms of weld quality and surface indentation. Meanwhile, a 3D finite element model taking three types of MA-RSW apparatus into account was created to reveal the improvement mechanism of the single-sided MA-RSW apparatus. The results showed that the novel single-sided MA-RSW apparatus can produce stronger radial magnetic field in effective welding region and thus provide a great potential and promotion effect to the weld quality in terms of macro-morphology, surface indentation, microstructure, microhardness, and mechanical properties.


Author(s):  
Habib Lebbal ◽  
Lahouari Boukhris ◽  
Habib Berrekia ◽  
Abdelkader Ziadi

2015 ◽  
Vol 3 (2) ◽  
pp. 28-32
Author(s):  
Yasser Rihan ◽  
◽  
S. Ayyad ◽  
M.I. Elamy ◽  
◽  
...  

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