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Thermodynamic consistent transport theory of Li-ion batteries

机译:锂离子电池的热力学一致输运理论

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摘要

Most Li ion insertion batteries consist of a porous cathode, a separator filled with electrolyte and an anode, which very often also has some porous structure. The solid part especially in the cathode is usually produced by mixing a powder of the actual active particles, in which Li ions will be intercalated, binder and carbon black to enhance the electronic conductivity of the electrode. As a result the porous structure of the electrodes is very complex, leading to complex potential, ion and temperature distributions within the electrodes. The intercalation and deintercalation of ions cannot be expected to be homogeneously distributed over the electrode due to the different transport properties of electrolyte and active particles in the electrode and the complex three-dimensional pore structure of the electrode. The influence of the final microstructure on the distribution of temperature, electric potential and ions within the electrodes is not known in detail, but may influence strongly the onset of degradation mechanisms. For being able to numerically simulate the transport phenomena, the equations and interface conditions for ion, charge and heat transport within the complex structure of the electrodes and through the electrolyte filled separator are needed. We will present a rigorous derivation of these equations based exclusively on general principles of nonequilibrium thermodynamics. The theory is thermodynamically consistent i.e. it guarantees strictly positive entropy production. The irreversible and reversible sources of heat are derived within the theory. Especially the various contribution to the Peltier heat due to the intercalation of ions are obtained as a result of the theory. Research highlights: Thermodynamic consistent transport theory for Li ion batteries Derivation of all irreversible and reversible heat sources in Li ion batteries Closed set of equations for ion, charge and heat transport in Li ion batteries Theory of Peltier heat for Li ion intercalation Microstructure resolved transport in porous electrodes
机译:大多数锂离子插入电池由多孔阴极,填充电解质的隔膜和阳极组成,阳极通常也具有一定的多孔结构。通常通过混合实际的活性颗粒粉末(其中嵌入锂离子),粘合剂和炭黑以增强电极的电子导电性,来生产特别是在阴极中的固体部分。结果,电极的多孔结构非常复杂,导致电极内的电势,离子和温度分布复杂。由于电解质和活性颗粒在电极中的传输特性不同以及电极的复杂三维孔结构不同,不能期望离子的嵌入和脱嵌在电极上均匀分布。最终的微观结构对电极内温度,电势和离子分布的影响尚不清楚,但可能会严重影响降解机理的开始。为了能够对输运现象进行数值模拟,需要在电极的复杂结构内以及通过填充电解质的隔板中进行离子,电荷和热传递的方程式和界面条件。我们将仅基于非平衡热力学的一般原理,对这些方程式进行严格推导。该理论在热力学上是一致的,即,它保证严格产生正熵。该理论推导了不可逆和可逆的热源。该理论的结果是,特别是由于离子的插入而对珀耳帖热产生了各种贡献。研究亮点:锂离子电池的热力学一致输运理论锂离子电池中所有不可逆和可逆热源的推导锂离子电池中离子,电荷和热传递的封闭方程组锂离子嵌入的珀耳帖热理论多孔电极

著录项

  • 来源
    《Journal of power sources》 |2011年第6期|p.3296-3302|共7页
  • 作者

    A. Latz; J. Zausch;

  • 作者单位

    Fraunhofer Institutfür Techno- und Wirtschaftsmathematik Kaiserslautern. Germany;

    Fraunhofer Institutfür Techno- und Wirtschaftsmathematik Kaiserslautern. Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    li ion batteries; nonequilibrium thermodynamics; heat transport; modeling;

    机译:锂离子电池;非平衡热力学传热造型;
  • 入库时间 2022-08-18 00:24:30

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