Hot Cracking Characteristics During Single-Mode Fiber and Green Laser Welding Processes in Lithium-Ion Battery Pack Manufacturing

Jae-Hyeon Park, Myung-Jin Kim, Heeshin Kang, Wonah Park, Eun-Joon Chun
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Abstract

Solidification cracking during lithium-ion battery packaging was metallurgically investigated, specifically for Cu-steel dissimilar materials. To this end, single-mode fiber and green lasers were employed under heat input conditions ranging from 1.3 to 8.0 J/mm. For both laser welds, solidification cracking was concentrated in the steel region of the fusion zone, particularly in the locally Cu-depleted region, regardless of the welding condition. Modified self-restraint tests were performed for overlapping dissimilar material combinations to elucidate the mechanism of solidification cracking. Analysis of the solidification cracking surface revealed that approximately 15?30 mass% Cu existed on the surface. Cu was highly enriched with a droplet shape, formed during solidification within the miscibility gap. By calculating the non-equilibrium weld mushy zone range based on the diffusion-controlled Scheil’s model, the solidification cracking in the Cu-depleted region was estimated at 453 K. It was strongly affected by the severe segregation of Cu (95.7 mass%) in the residual liquid at the terminal stage of the solidification path. Therefore, from a welding metallurgical perspective, homogeneous Cu distribution and minimization of Cu segregation within the fusion zone are essential for suppressing or minimizing the solidification cracking susceptibility of Cu?steel dissimilar laser welding.
锂离子电池组制造中单模光纤和绿色激光焊接过程中的热裂特性
对锂离子电池包装过程中的凝固开裂进行了冶金研究,特别是对铜-钢异种材料进行了研究。为此,在1.3 ~ 8.0 J/mm的热输入条件下,采用单模光纤和绿色激光器。无论焊接条件如何,两种激光焊缝的凝固开裂都集中在熔合区的钢区,尤其是局部贫铜区。采用改进的自约束试验对不同材料组合进行重叠,以阐明凝固开裂机理。对凝固裂纹表面的分析表明,大约有15?表面存在30%质量%的Cu。Cu在凝固过程中以液滴形式在混相间隙内富集。根据扩散控制Scheil模型计算非平衡焊缝糊化区范围,估计贫铜区凝固开裂发生在453k。在凝固路径的末端,残余液中Cu(质量分数为95.7 %)的严重偏析对其产生了强烈的影响。因此,从焊接冶金学的角度来看,均匀的Cu分布和尽量减少熔合区内的Cu偏析是抑制或尽量减少Cu的凝固开裂敏感性的关键。钢材异种激光焊接。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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