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Nanofluid-based cooling of cylindrical lithium-ion battery packs employing forced air flow

机译:基于纳米流体的圆柱形锂离子电池组冷却,采用强制空气流量

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摘要

Efficient cooling strategies are very important issues in thermal management of lithium-Ion battery system and these techniques should provide cost effective and energy saving solutions for temperature rise of the system during battery operation. A pseudo 2D electrochemical model has been used to investigate the electrochemical and thermal condition of commercial 18650 Lithium-Ion battery. This analysis was compared to previous experimental studies and results showed that the model predicts the temperature rise and thermal power generation very well. Results from the electro-thermal analysis were used to examine a cooling method. In this strategy, the cylindrical Li-ion cell is submersed within a thin cylindrical tank containing water-Al2O3 nanofluid. Air flow is employed to remove the heat from the system during discharge process. After testing this method for a single cell with various sizes of the secondary cylinder, critical and thermally dangerous arrangements of Li-ion cells were analyzed employing the new technique. 3D transient Computational Fluid Dynamics (CFD) simulations were used to see the effect of presence of the secondary cylinder on temperature rise. Results revealed that the new method reduces the maximum temperature of the cells efficiently.
机译:高效的冷却策略是锂离子电池系统热管理的非常重要的问题,这些技术应在电池运行期间为系统的温度升高提供成本效益和节能解决方案。伪2D电化学模型已用于研究商业18650锂离子电池的电化学和热条件。将该分析与先前的实验研究进行了比较,结果表明,该模型预测了温度升高和热发电。电热分析的结果用于检查冷却方法。在该策略中,圆柱形锂离子电池浸入含有水 - Al2O3纳米流体的薄圆柱形罐内。使用空气流动在放电过程中从系统中除去热量。在测试具有各种尺寸的次要汽缸的单个电池的方法之后,分析采用新技术的锂离子电池的临界和热危险布置。 3D瞬态计算流体动力学(CFD)模拟用于看到次级气缸在温度上升的情况下的效果。结果表明,新方法有效降低了细胞的最高温度。

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