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Integrated modeling for the cyclic behavior of high power Li-ion batteries under extended operating conditions

机译:高功率锂离子电池在扩展工作条件下循环行为的集成建模

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摘要

The dynamic thermal and electrical behavior of high power LiFePO_4 cathode-type Li-ion batteries is studied with extended considerations such as demanded current ranging from 12 to 30 A, battery temperatures ranging from 283 to 313 K and a redefinition of the concept of state of charge during cycling conditions. The equivalent electrical model, consisting of a series resistance, a parallel resistance-capacitor, a voltage source and state of charge calculators, can be improved with the addition of current and temperature gains for each element. In addition, a non-intrusively-obtained alternative thermal model extraction is proposed to uncouple from the experimental battery temperature based on electrochemical research found in the literature. This improved model extraction for high power cylindrical batteries can achieve a temperature and voltage relative runtime error in the range of 1% and 5% in average, respectively. The effects of lithium concentration in the anode and cathode are accurately predicted with state of charge accelerators, which vary linearly with temperature. Aiming for a power systems environment, the integrated battery model is built and validated experimentally to demonstrate its accurate prediction. This improved integrated battery model can be employed for battery stack simulations, improved state of charge algorithm testing and optimization of hybrid systems - with a light computational demand. Finally, a performance index radar plot is proposed to conveniently compare electrical and thermal properties of different types of batteries.
机译:研究了大功率LiFePO_4阴极型锂离子电池的动态热和电性能,并考虑了更多的因素,例如要求电流范围为12至30 A,电池温度范围为283至313 K和重新定义了状态概念。在循环条件下充电。通过为每个元件增加电流和温度增益,可以改善由串联电阻,并联电阻电容器,电压源和电荷状态计算器组成的等效电气模型。此外,基于文献中发现的电化学研究,提出了一种非侵入式获得的替代热模型提取方法,以与电池的实验温度分离。用于大功率圆柱形电池的改进的模型提取可以分别实现平均1%和5%范围内的温度和电压相对运行时间误差。阳极和阴极中锂浓度的影响可以通过电荷促进剂的状态准确预测,电荷促进剂的状态随温度线性变化。针对电力系统环境,构建并通过实验验证了集成电池模型,以证明其准确的预测。这种改进的集成电池模型可用于电池组仿真,改进的充电状态算法测试以及混合动力系统的优化-运算量很小。最后,提出了一种性能指标雷达图,可以方便地比较不同类型电池的电和热性能。

著录项

  • 来源
    《Applied Energy》 |2013年第11期|681-689|共9页
  • 作者

    A.G. Miranda; C.W. Hong;

  • 作者单位

    Department of Power Mechanical Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan;

    Department of Power Mechanical Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan;

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

    Lithium ion battery; Integrated battery model; Dynamic cycle; State of charge;

    机译:锂离子电池;集成电池型号;动态周期;充电状态;

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