结构电池模型及其在系统级质量节约方面的潜力

Q1 Materials Science Multifunctional Materials Pub Date : 2019-09-10 DOI:10.1088/2399-7532/ab3bdd
Wilhelm Johannisson, D. Zenkert, G. Lindbergh
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引用次数: 57

摘要

结构电池是一种既能承载机械负荷又能储存电能的材料。这是通过结合碳纤维复合材料和锂离子电池的特性来实现的。结构电池有许多设计参数,为了了解它们的影响和重要性,本文提出了一个多功能性能模型。结构电池的力学性能和电能存储与传统碳纤维复合材料的力学性能和标准锂离子电池的电能存储相匹配。后者都是单功能的,具有已知的性能和质量。为了计算使用结构电池的效益,将结构电池的质量与两种单功能系统的质量进行了比较。多功能材料的力学性能和电化学性能之间往往存在反比关系,为了理解这些关系,对结构电池的变量进行了灵敏度分析。这为结构电池复杂的多功能设计提供了新的见解。结果表明,与单功能系统相比,它有可能节省质量,但这在很大程度上取决于它所比较的结构。随着结构电池设计的改进,与最先进的复合层压板和锂离子电池相比,它有可能实现质量节约。
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Model of a structural battery and its potential for system level mass savings
Structural batteries are materials that can carry mechanical load while storing electrical energy. This is achieved by combining the properties of carbon fiber composites and lithium ion batteries. There are many design parameters for a structural battery and in order to understand their impact and importance, this paper presents a model for multifunctional performance. The mechanical behavior and electrical energy storage of the structural battery are matched to the mechanical behavior of a conventional carbon fiber composite, and the electrical energy storage of a standard lithium ion battery. The latter are both monofunctional and have known performance and mass. In order to calculate the benefit of using structural batteries, the mass of the structural battery is compared to that of the two monofunctional systems. There is often an inverse relationship between the mechanical and electrochemical properties of multifunctional materials, in order to understand these relationships a sensitivity analysis is performed on variables for the structural battery. This gives new insight into the complex multifunctional design of structural batteries. The results show that it is possible to save mass compared to monofunctional systems but that it depends strongly on the structure it is compared with. With improvements to the design of the structural battery it would be possible to achieve mass saving compared to state-of-the-art composite laminates and lithium ion batteries.
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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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