Virtual Testbed for Economical and Reliability Analysis of Battery Thermal Management Control Strategies

IF 2.2 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Electronic Packaging Pub Date : 2024-07-18 DOI:10.1115/1.4065988
Mostafa Olyaei, Sagar Singh, Kaiying Jiang, Y. Gurumukhi, Kenneth E. Goodson, Mehdi Asheghi, Nenad Miljkovic
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Abstract

A virtual testbed simulation framework is created for the economic, reliability, and lifetime analysis of battery thermal management control strategies in electric vehicles. The system-level model is created in the MATLAB environment using the Simscape library and custom components are developed as required. A lumped parameter coupled electro-thermal model with temperature and state of charge (SOC) dependent cell parameters is adopted from the literature to characterize battery performance. Suitable cell capacity degradation models are implemented to capture the cycle aging and calendar aging of the battery. The economic benefit of extending the lithium iron phosphate (LFP) battery lifetime by optimal thermal conditioning is weighed against the corresponding energy cost of the operation allowing for the assessment and adoption of economy-conscious strategies under different conditions. Active cooling of the battery using a vapor compression system along with a preconditioning strategy is benchmarked against passive cooling by a radiator for operating cost, battery lifetime, and net cost savings. Active cooling with precooling before fast charging can maintain optimal battery temperature but requires an additional electricity cost of 170-530 $/year, compared to passive cooling. However, the added cost is more than compensated for by the increase in battery lifetime by 1.4-1.9 years leading to a net saving of 140-550 $/year.
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电池热管理控制策略的经济性和可靠性分析虚拟试验台
创建了一个虚拟试验台仿真框架,用于分析电动汽车电池热管理控制策略的经济性、可靠性和使用寿命。系统级模型是在 MATLAB 环境中使用 Simscape 库创建的,并根据需要开发了定制组件。该模型采用了文献中的整数参数耦合电热模型,其电池参数与温度和充电状态(SOC)相关,用于描述电池性能。采用合适的电池容量衰减模型来捕捉电池的循环老化和日历老化。通过优化热调节延长磷酸铁锂(LFP)电池寿命的经济效益与相应的运行能源成本进行权衡,从而评估和采用不同条件下注重经济性的策略。在运行成本、电池寿命和净成本节约方面,使用蒸汽压缩系统和预处理策略对电池进行主动冷却,并与散热器的被动冷却进行比较。与被动冷却相比,在快速充电前进行预冷的主动冷却可保持最佳的电池温度,但每年需要增加 170-530 美元的电费。不过,增加的成本因电池寿命延长 1.4-1.9 年而得到补偿,每年净节省 140-550 美元。
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来源期刊
Journal of Electronic Packaging
Journal of Electronic Packaging 工程技术-工程:电子与电气
CiteScore
4.90
自引率
6.20%
发文量
44
审稿时长
3 months
期刊介绍: The Journal of Electronic Packaging publishes papers that use experimental and theoretical (analytical and computer-aided) methods, approaches, and techniques to address and solve various mechanical, materials, and reliability problems encountered in the analysis, design, manufacturing, testing, and operation of electronic and photonics components, devices, and systems. Scope: Microsystems packaging; Systems integration; Flexible electronics; Materials with nano structures and in general small scale systems.
期刊最新文献
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