Development of a CFD Simulation Framework for Aerothermal Analyses of Electric Vehicle Battery Packs

IF 2.7 4区 工程技术 Q3 ELECTROCHEMISTRY Journal of Electrochemical Energy Conversion and Storage Pub Date : 2023-11-08 DOI:10.1115/1.4063800
Adit Misar, Ayushi Jain, Jun Xu, Mesbah Uddin
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Abstract

Abstract The rise of electric vehicles has driven the extensive adoption of lithium-ion batteries (LIBs) due to their favorable attributes—compactness, low resistance, high power density, and minimal self-discharge. To enhance LIB reliability, an efficient battery thermal management system is imperative. This paper introduces a finite volume-based aerothermal analysis framework for a 32-cell high-energy density LIB pack. We also explore the effectiveness of various turbulence models in capturing local hotspots, discharge rates, and current levels across different geometries and inlet velocities. Our approach involves modeling the battery using Simcenter Battery Design Studio and importing it into Simcenter star-ccm+ for aerothermal simulations in which temperature distribution, discharge rates, current levels, and maximum temperature across are monitored for aligned, cross, and staggered configurations of the battery pack under varying inlet velocities. Our findings highlight the significant impact of boundary condition modeling on simulation stability. Also we observed that the standard k–ε model provides the most accurate predictions, with prediction accuracy within 3–10% of experimental data. Moreover, we identify substantial dependencies between heat generation and discharge current, as well as thermal gradients and inlet velocity. Finally, we conclude that the aligned cell arrangement offers the best thermal uniformity and cooling efficiency.
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电动汽车电池组空气热分析CFD仿真框架的开发
电动汽车的兴起推动了锂离子电池(LIBs)的广泛采用,因为它具有紧凑、低电阻、高功率密度和最小自放电的优点。为了提高电池的可靠性,高效的电池热管理系统势在必行。介绍了一种基于有限体积的32芯高能量锂电池气动热分析框架。我们还探讨了各种湍流模型在捕获局部热点、放电率和不同几何形状和进口速度的电流水平方面的有效性。我们的方法包括使用Simcenter电池设计工作室对电池进行建模,并将其导入Simcenter star-ccm+进行空气热模拟,其中温度分布、放电率、电流水平和最大温度通过不同入口速度下电池组的排列、交叉和交错配置进行监测。我们的研究结果强调了边界条件建模对仿真稳定性的重要影响。我们还观察到,标准k -ε模型提供了最准确的预测,预测精度在实验数据的3-10%以内。此外,我们确定了热量产生和放电电流之间的实质性依赖关系,以及热梯度和入口速度。最后,我们得出结论,排列的电池排列提供了最佳的热均匀性和冷却效率。
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来源期刊
CiteScore
4.90
自引率
4.00%
发文量
69
期刊介绍: The Journal of Electrochemical Energy Conversion and Storage focuses on processes, components, devices and systems that store and convert electrical and chemical energy. This journal publishes peer-reviewed archival scholarly articles, research papers, technical briefs, review articles, perspective articles, and special volumes. Specific areas of interest include electrochemical engineering, electrocatalysis, novel materials, analysis and design of components, devices, and systems, balance of plant, novel numerical and analytical simulations, advanced materials characterization, innovative material synthesis and manufacturing methods, thermal management, reliability, durability, and damage tolerance.
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