Effect of Ni-P Coating Layer on the Solidification Cracking of Cu-Steel Dissimilar Welds for Li-Ion Battery Pack Manufacturing

IF 1.1 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jae-Hyeon Park, Myung-Jin Kim, Heeshin Kang, Eun-Joon Chun
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Abstract

This study investigated the effect of a Ni-P coating layer on the solidification cracking behavior of Cu–mild steel dissimilar welds during the manufacturing of cylindrical Li-ion battery packs for electric vehicles. Four Cu plates were prepared and characterized: uncoated Cu and three levels (12, 50, and 100 μm) of Ni–P-coated Cu. The welding experiments used a single-mode fiber laser (2 kW) at extremely low heat input (1.82 J/mm) and high welding speed (1100 mm/s). Three laser beam patterns were used: linear, spiral, and wobble+spiral. Solidification cracking was detected for the Cu–Steel dissimilar welds for all the laser beam patterns on the uncoated Cu and the 50 and 100 μm Ni–P-coated Cu materials. Conversely, the dissimilar welds using 12 μm of Ni–P-coated Cu considerably suppressed solidification cracking behavior. Similarly, the welds with suppressed solidification cracking (using 12 μm of Ni–P-coated Cu) exhibited superior mechanical properties under the laser beam pattern. The weakest mechanical properties were confirmed for the welds using 100 μm of Ni–P-coated Cu. The solidification cracking and mechanical properties were highly dependent on the weld solidification of Ni and P. The suppression of solidification cracking in the welds using 12 μm of Ni–P coated Cu was attributed to the reduction in the weld mushy zone temperature range, due to the mixing of Ni, which reduced the solidification segregation of Cu. In contrast, the severe solidification cracking for the welds using 50 and 100 μm of Ni–P-coated Cu was estimated to result from the increased amount of incorporated P, which expands the weld mushy zone range.
Ni-P 涂层对锂离子电池组制造中铜钢异种焊缝凝固裂纹的影响
本研究探讨了在制造电动汽车用圆柱形锂离子电池组的过程中,Ni-P 涂层对铜-软钢异种焊缝凝固开裂行为的影响。研究制备了四块铜板并对其进行了表征:未涂层铜板和三个级别(12、50 和 100 μm)的 Ni-P 涂层铜板。焊接实验使用了单模光纤激光器(2 kW),输入热量极低(1.82 J/mm),焊接速度极高(1100 mm/s)。使用了三种激光束模式:直线、螺旋和摆动+螺旋。在所有激光束模式下,未涂层铜以及 50 和 100 μm Ni-P 涂层铜材料上的铜-钢异种焊缝都检测到了凝固裂纹。相反,使用 12 μm Ni-P 涂层铜的异种焊缝大大抑制了凝固开裂行为。同样,凝固开裂受到抑制的焊缝(使用 12 μm 的 Ni-P 涂层铜)在激光束模式下表现出更优越的机械性能。使用 100 μm Ni-P 涂层铜的焊缝的机械性能最弱。使用 12 μm Ni-P 涂层铜的焊缝的凝固开裂受到抑制,这是因为镍的混合减少了铜的凝固偏析,从而降低了焊缝粘合区的温度范围。相比之下,使用 50 μm 和 100 μm Ni-P 涂层铜的焊缝出现严重凝固裂纹的原因估计是掺入的 P 量增加,从而扩大了焊缝粘合区的范围。
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来源期刊
Korean Journal of Metals and Materials
Korean Journal of Metals and Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-METALLURGY & METALLURGICAL ENGINEERING
CiteScore
1.80
自引率
58.30%
发文量
100
审稿时长
4-8 weeks
期刊介绍: The Korean Journal of Metals and Materials is a representative Korean-language journal of the Korean Institute of Metals and Materials (KIM); it publishes domestic and foreign academic papers related to metals and materials, in abroad range of fields from metals and materials to nano-materials, biomaterials, functional materials, energy materials, and new materials, and its official ISO designation is Korean J. Met. Mater.
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