用于优化浸入式电池冷却系统表面形貌的剪切减薄粘弹性冷却剂传热实验分析

David Taylor, Leone Fasciati, Tamal Roy, D. Poulikakos
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引用次数: 0

摘要

在许多新的应用中,电池需要经历高充放电速率,这将导致高热磨损。具体来说,锂离子电池在超出一定工作温度范围的情况下,寿命会显著降低,严重影响相关应用的可持续性。由于空气冷却和管道冷却系统往往不能提供足够的冷却功率或温度均匀性,目前人们对浸入式电池冷却系统产生了浓厚的兴趣。为了在最小的泵送功率下达到最佳的传热,必须优化暴露在冷却剂表面的地形以及冷却剂的性能。特别是剪切变薄的粘弹性液体似乎是有希望的冷却剂的候选者,因为在低雷诺数的流动中会出现二次流模式。我们在这里提出了一个实验装置,它允许评估具有几何形状的流腔中表面形貌和冷却剂的不同组合,这与相邻电池单元之间的流动直接相关。我们测量了加热后的结构化样品板暴露于纯水或添加0.1% (w/w)黄原胶的水流中的最高温度,以及水流方向的温度梯度。我们发现,表面形貌在与前一种(牛顿)冷却剂结合使用时可以带来更好的冷却性能,但与后一种(剪切减薄粘弹性)冷却剂一起使用时就失去了这一优势。我们还发现了在非牛顿液体中与另一种表面几何形状结合产生二次流的迹象。这将有助于指导剪切减薄粘弹性冷却剂的表面形貌设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental analysis of heat transfer to shear-thinning viscoelastic coolants for optimizing surface topographies in immersed battery cooling systems
In many novel applications, batteries undergo high charging and discharging rates, which, among other effects, leads to high thermal wear. Specifically the lifetime of Li-ion batteries reduces significantly under operation outside of a certain range of operating temperatures, which severely impairs the sustainability of the related applications. As air-cooling and pipe-based cooling systems often do not provide enough cooling power or temperature homogeneity, there currently exits strong interest in immersed battery cooling systems. To reach optimum heat transfer at minimum pumping power, the topography of the surface exposed to the coolant, as well as the coolant properties have to be optimized. Especially shear-thinning viscoelastic liquids seem to be promising candidates for coolants, as secondary flow patterns can arise in their flow at low Reynolds numbers. We here present an experimental setup, which allows evaluating different combinations of surface topography and coolant in a flow cavity with a geometry, which is directly relatable to flow between neighboring battery cells. We measure the maximum temperature, as well as the temperature gradient in flow direction of a heated structured sample plate exposed to flow of either pure water or water with 0.1% (w/w) xanthan added. We find that surface topography, which leads to a better cooling performance in combination with the former (Newtonian) coolant, loses this advantage when used with the latter (shear-thinning viscoelastic) coolant. We also find indications for secondary flow arising in the non-Newtonian liquid in combination with another surface geometry. This will help guiding the design of surface topographies for shear-thinning viscoelastic coolants.
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