Characterization of Joint Quality in Ultrasonic Welding of Battery Tabs

S. Lee, Tae-Hyung Kim, S. Hu, W. Cai, Jeffrey Abell, Jingjing Li
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引用次数: 119

Abstract

Manufacturing of lithium-ion battery packs for electric or hybrid electric vehicles requires a significant amount of joining such as welding to meet desired power and capacity needs. However, conventional fusion welding processes such as resistance spot welding and laser welding face difficulties in joining multiple sheets of highly conductive, dissimilar materials with large weld areas. Ultrasonic metal welding overcomes these difficulties by using its inherent advantages derived from its solid-state process characteristics. Although ultrasonic metal welding is well-qualified for battery manufacturing, there is a lack of scientific quality guidelines for implementing ultrasonic welding in volume production. In order to establish such quality guidelines, this paper first identifies a number of critical weld attributes that determine the quality of welds by experimentally characterizing the weld formation over time. Samples of different weld quality were cross-sectioned and characterized with optical microscopy, scanning electronic microscopy (SEM), and hardness measurements in order to identify the relationship between physical weld attributes and weld performance. A novel microstructural classification method for the weld region of an ultrasonic metal weld is introduced to complete the weld quality characterization. The methodology provided in this paper links process parameters to weld performance through physical weld attributes.
电池片超声焊接接头质量表征
制造用于电动或混合动力汽车的锂离子电池组需要大量的连接,如焊接,以满足所需的功率和容量需求。然而,传统的熔焊工艺,如电阻点焊和激光焊接,在连接多片高导电性、不同材料和大焊缝区域时面临困难。超声波金属焊接利用其固态工艺特性所固有的优势克服了这些困难。虽然超声波金属焊接在电池制造中是完全合格的,但在批量生产中实施超声波焊接缺乏科学的质量指南。为了建立这样的质量准则,本文首先通过实验表征焊缝形成随时间的变化,确定了一些决定焊缝质量的关键焊缝属性。为了确定焊缝物理属性与焊缝性能之间的关系,采用光学显微镜、扫描电镜(SEM)和硬度测量对不同焊接质量的试样进行了截面分析和表征。介绍了一种新的超声金属焊缝区域显微组织分级方法,以完成焊缝质量表征。本文提供的方法通过物理焊接属性将工艺参数与焊接性能联系起来。
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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