干圆柱形锂离子电池隔板-壳层界面热导的实验表征

Aalok U Gaitonde, Amulya Nimmagadda, A. Marconnet
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引用次数: 4

摘要

尽管与其他类型的电池相比,锂离子电池具有许多优势(如能量密度、效率等),但最近涉及消费电子产品的事故使人们有必要更深入地了解这些电池的热行为。形成棱柱状和螺旋缠绕电池的多层堆叠之间的热传输通常会阻碍系统中的热量排出。在笔记本电脑、电动汽车和移动电源中最常见的圆柱形电池中,热量必须通过多层阳极-分离器-阴极结构传导到金属外壳,这种结构的有效导热性很低。这项工作介绍了热导率和热导率测量干燥18650细胞使用红外显微镜。捕获二维温度图,并在与热流垂直的方向上取平均值,以便分析一维温度分布。界面温度跳跃表示热阻,并且可以从单个材料内由于传导而产生的热梯度中分离出来。我们测量了电池堆的跨平面导热系数和界面导热系数。由于液体电解质的存在,有源电池的界面热导率和热导率预计会更高。研究表明,塑料隔膜材料的低平面导热系数是其散热的限制因素之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental characterization of thermal conductance across the separator-shell interface in dry cylindrical lithium ion batteries
Although Lithium ion batteries offer numerous advantages (e.g. energy density, efficiency, etc.) over other types of batteries, recent accidents involving consumer electronics have necessitated a deeper understanding of the thermal behavior of these batteries. Thermal transport across the multilayer stacks that form prismatic and spiral-wound batteries generally hinders heat removal from the system. In cylindrical batteries, most commonly found in laptops, electric vehicles and power banks, heat must conduct to the metallic shell through many layers of the anode-separator-cathode structure, which is of low effective thermal conductivity. This work presents thermal conductance and thermal conductivity measurements of dry 18650 cells using infrared microscopy. Two-dimensional temperature maps are captured and are averaged in the direction normal to the heat flow for analysis of the one-dimensional temperature profiles. Interfacial temperature jumps indicate thermal resistances and can be separated from the thermal gradients due to conduction within a single material. We measure both cross-plane thermal conductivity of the battery stack and interfacial thermal conductance. Interfacial thermal conductance and the thermal conductivity in active batteries is expected to be higher, due to the presence of a liquid electrolyte. This work demonstrates that the low cross plane thermal conductivity of the plastic separator material is one of the limiting factors in heat dissipation.
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