通过热电化学模型评估结构电池复合材料的多功能效率

Q1 Materials Science
Jacob Eaton, M. Naraghi, J. Boyd
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引用次数: 3

摘要

结构电池是一个新兴的研究领域,旨在将承载和能量存储功能结合起来,以提高电池驱动汽车和消费产品的系统级能量存储。结构电池在电动汽车上应用时,将比传统电池面临更大的温度波动。然而,缺乏关于这些热边界条件如何影响结构电池的功率能力的公开数据。为了填补这一空白,本工作通过求解具有热源和对流边界条件的一维传热方程,模拟了高纵横比结构电池复合材料的瞬态温度依赖比功率能力。采用二阶有限差分法对电阻率损耗进行等效电路建模,研究了电池的性能。评估了60多种不同的运行配置,研究了热边界条件和内部热量如何影响结构电池的功率能力和多功能效率。模拟的结构电池复合材料具有良好的杨氏模量(铝的79.5至80.3%),比能量为158 Wh/kg,比功率为41.2至55.2 W/kg,根据配置和热负载条件提供1.15至1.17的多功能效率,并展示了承重结构电池实现质量节约的潜力。这项工作强调了功率效率对电池设计和外部环境条件的依赖。绝缘材料被证明可以提高多功能效率,特别是在低环境温度下。结果表明,当电池温度因环境温度高或电池发热而升高时,由于离子电导率与电池温度之间存在良好的非线性关系,比功率效率呈指数级增长。模拟还展示了一个热反馈回路,其中电阻率引起的功率损失可以导致电池温度的自我调节。这种效果降低了运行平均损耗,特别是在低环境温度下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluating multifunctional efficiency of a structural battery composite via thermo-electro-chemical modelling
The emerging research field of structural batteries aims to combine the functions of load bearing and energy storage to improve system-level energy storage in battery-powered vehicles and consumer products. Structural batteries, when implemented in electric vehicles, will be exposed to greater temperature fluctuations than conventional batteries in EVs. However, there is a lack of published data regarding how these thermal boundary conditions impact power capabilities of the structural batteries. To fill this gap, the present work simulates transient temperature-dependent specific power capabilities of high aspect ratio structural battery composite by solving one-dimensional heat transfer equation with heat source and convective boundary conditions. Equivalent circuit modeling of resistivity-induced losses is used with a second-order finite difference method to examine battery performance. More than 60 different run configurations are evaluated, examining how thermal boundary conditions and internal heat influence power capabilities and multifunctional efficiency of the structural battery. The simulated structural battery composite is shown to have good specific Young’s modulus (79.5 to 80.3% of aluminum), a specific energy of 158 Wh/kg, and specific power of 41.2 to 55.2 W/kg, providing a multifunctional efficiency of 1.15 to 1.17 depending on configuration and thermal loading conditions and demonstrating the potential of load-bearing structural batteries to achieve mass savings. This work emphasizes the dependency of power efficiency on cell design and external environmental conditions. Insulating material is shown to improve multifunctional efficiency, particularly for low ambient temperatures. It is demonstrated that as cell temperature increases due to high ambient temperature or heat generation in the battery, the specific power efficiency increases exponentially due to a favorable nonlinear relation between ionic conductivity and cell temperature. The simulations also demonstrate a thermal feedback loop where resistivity-induced power losses can lead to self-regulation of cell temperature. This effect reduces run-averaged losses, particularly at low ambient temperature.
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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