Challenges in Contacting Metal–Polymer Current Collectors in Pouch Cells

IF 3.3 Q2 ENGINEERING, MANUFACTURING
Hakon Gruhn, Tobias Krüger, M. Mund, M. Kandula, Klaus Dilger
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引用次数: 0

Abstract

Recent research focuses on replacing metal current collectors with metallized polymer foils. However, this introduces significant challenges during cell production, as manufacturing steps must be adapted. Currently, copper is used as the current collector on the anode side and aluminum on the cathode side. These current collectors are then joined within the cell with an arrester tab. This step, known as contacting, is carried out industrially in pouch cells using ultrasonic welding or laser beam welding. However, since the polymer foil is electrically insulating, the current contacting procedures cannot be directly transferred to the metal–polymer current collectors. In this work, ultrasonic welding, laser beam welding, and a mechanical contacting method are considered, and the challenges arising from the material properties are highlighted. The properties of the joints are discussed as a function of the number of foils and the coating thickness of the metallization. It is demonstrated that successful contacting by ultrasonic welding and mechanical clamping is possible, as both mechanical strength and electrical conductivity are ensured by the joint. Laser beam welding was unsuccessful. Additionally, the electrical resistance is one to two orders of magnitude higher than that of pure aluminum and copper foils, which necessitates further optimization. Furthermore, ultrasonic welding is limited to welding 16 foils or fewer. This does not match industrial requirements. Consequently, novel approaches for contacting metal–polymer current collectors are required.
袋式电池中接触金属聚合物集流体的挑战
最近的研究重点是用金属化聚合物箔代替金属集流器。然而,这在电池生产过程中带来了重大挑战,因为制造步骤必须适应。目前,铜被用作阳极侧的集流器,铝被用作阴极侧的集流器。然后用避雷器标签将这些电流收集器连接在单元内。这一步,被称为接触,在工业上是用超声波焊接或激光束焊接在袋状电池中进行的。然而,由于聚合物箔是电绝缘的,电流接触过程不能直接转移到金属聚合物集流器。在本工作中,考虑了超声波焊接、激光束焊接和机械接触方法,并强调了材料性能带来的挑战。讨论了接头性能与镀层数量和镀层厚度的关系。结果表明,在保证了接头的机械强度和导电性的前提下,超声波焊接和机械夹紧是可以成功接触的。激光束焊接不成功。此外,电阻比纯铝箔和铜箔高一到两个数量级,这需要进一步优化。此外,超声波焊接仅限于焊接16个或更少的箔。这不符合工业要求。因此,需要新的接触金属聚合物集流器的方法。
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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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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