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Non-destructive evaluation of slot-die-coated lithium secondary battery electrodes by in-line laser caliper and IR thermography methods

机译:在线激光卡尺和红外热成像方法对缝模包覆锂二次电池电极的无损评估

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Non-destructive, in-line quality control methods were adopted for evaluating the thickness and homogeneity of wet and dry lithium secondary battery electrodes. Laser caliper and infrared (IR) thermography methods were implemented in a systematic fashion for the first time to evaluate the quality of electrodes during the coating process on a slot-die coater. Laser caliper sensors were mounted, aligned, and subsequently calibrated at the oven inlet of the coating line in order to examine the thicknesses of different cathodes and anodes. The effect of various factors such as substrate vibration, temperature, surface reflectivity and laser positions on the thickness measurement during slot-die coating were evaluated. The setup was used to monitor the wet thickness of the cathode and anode, and the precision of the in-line laser thickness measurement was determined to be less than ±2%. Thickness deviation for cathodes was typically ±2.0-2.3%, and for anodes it was typically ±2.2-2.6%, which confirms excellent precision of the measurement. The homogeneity of the dried electrodes was also evaluated by IR thermography at the oven outlet of the coating line. Temperature profiles from thermography images of dry electrodes were carefully examined to detect any flaws and inhomogeneity present in the electrodes. An increase or decrease in the temperature profiles indicated defects/flaws in the electrodes that could not be observed in optical images. The techniques applied in this work will be helpful for detection of electrode flaws and contamination during large-scale manufacturing and to identify flawed product prior to lithium-ion cell assembly.
机译:采用无损在线质量控制方法来评估湿式和干式锂二次电池电极的厚度和均匀性。第一次以系统的方式实施激光卡尺和红外(IR)热成像方法,以评估在狭缝模头涂布机上进行涂布过程中电极的质量。激光卡尺传感器被安装,对准并随后在涂布线的烤箱入口处进行校准,以检查不同阴极和阳极的厚度。在狭缝模头涂布过程中,评估了各种因素(如基板振动,温度,表面反射率和激光位置)对厚度测量的影响。该设置用于监视阴极和阳极的湿厚度,并且确定在线激光厚度测量的精度小于±2%。阴极的厚度偏差通常为±2.0-2.3%,而阳极的厚度偏差通常为±2.2-2.6%,这证实了测量的极佳精度。干燥电极的均质性也通过在涂装线烤箱出口处的红外热成像法进行评估。仔细检查了干燥电极的热成像图像中的温度曲线,以检测电极中是否存在任何缺陷和不均匀性。温度分布的升高或降低表明电极中的缺陷/缺陷在光学图像中无法观察到。这项工作中使用的技术将有助于大规模制造过程中检测电极缺陷和污染,并在锂离子电池组装之前识别有缺陷的产品。

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