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Thermal abusive experimental research on the large-format lithium-ion battery using a buried dual-sensor

机译:埋藏双传感器的大幅锂离子电池的热滥用实验研究

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摘要

The study on the thermal flow characteristics of temperature and pressure is helpful to understand the thermal runway mechanism of batteries. In this study, a 50 Ah, 3.65 V commercial prismatic battery with an Li (Ni0.6Co0.2Mn0.2)O-2 cathode is tested through thermal abusive experiments. The thermal flow characteristics of thermal runaway behaviors including temperature, pressure and gas quality have studied comprehensively by the proposed method of a dual-sensor, which are buried into battery. The experimental results indicate that the thermal runaway test can be divided into five stages. The internal pressure reaches to its maximum value of 1230 kPa and the first venting of the battery is appeared during Stage III. During Stage V, the battery internal temperature reaches to the maximum value of 655 degrees C, and the second venting happens. The maximum pressure appears 290s earlier than temperature in average, which can be used for warming signal. Additionally, before battery safety valve bursting, its internal pressure variation has interactions with changings in both temperature and the amount of chemical reactant. To analyze this relationship, the P-T coefficient is introduced. The P-T coefficient is positive in the temperature ranges of 30 degrees C to 65 degrees C, 95 degrees C similar to 115 degrees C and 130 degrees C similar to 180 degrees C. This means that the internal pressure of battery increases with temperature rising, which is mainly due to the reaction gas production. In the temperature of 65 degrees C similar to 95 degrees C, the P-T coefficient is negative. It can be deduced that the produced reactants, such as alkanes and alkenes, are re-dissolved in the organic electrolyte solvents. In summary, this novel study will be a guidance for thermal hazards early warming and battery internal thermal state analysis, which guides the thermal safety design of batteries.
机译:对温度和压力的热流特性的研究有助于了解电池的热跑道机制。在本研究中,通过热滥用实验测试了50α,3.65 V商业棱柱电池,通过热滥用实验测试了Li(Ni0.6Co0.2Mn0.2)O-2阴极。通过埋入电池的双传感器的方法,全面研究了包括温度,压力和气体质量的热失控行为的热流动特性。实验结果表明,热失控试验可分为五个阶段。内部压力达到其最大值为1230kPa,并且在第三阶段期间出现电池的第一个通风。在阶段V期间,电池内部温度达到655摄氏度的最大值,第二个通风发生。最大压力比温度平均早于290s,可用于加热信号。另外,在电池安全阀爆裂之前,其内部压力变化具有与温度和化合物量的变化相互作用。为了分析这种关系,介绍了P-T系数。 Pt系数在30℃至65℃的温度范围内为正,95℃,类似于115℃和130℃,类似于180℃。这意味着电池的内部压力随温度升高而增加,这主要是由于反应气体生产。在65摄氏度的温度与95摄氏度相似,P-T系数是负的。可以推断出生产的反应物,例如烷烃和烯烃,重新溶解在有机电解质溶剂中。总之,这项新颖的研究将是热危害早期变暖和电池内部热状态分析的指导,引导电池的热安全设计。

著录项

  • 来源
    《Journal of Energy Storage》 |2021年第1期|102156.1-102156.11|共11页
  • 作者单位

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

    Tsinghua Univ State Key Lab Automot Safety & Energy Beijing 100084 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Thermodynamic characteristics; Gas quantity; P-T coefficient; Battery thermal safety;

    机译:热力学特性;气体量;P-T系数;电池热安全;

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