高级检索

单双面陶瓷隔膜储能锂电池热失控行为对比

Comparison of thermal runaway behaviors of energy storage lithium-ion batteries with single-sided and double-sided ceramic separators

  • 摘要: 电池储能装置是配电网安全稳定运行的核心,但其规模化应用安全问题突出。针对单/双面陶瓷涂覆隔膜在大容量磷酸铁锂(lithium iron phosphate,LFP)电芯典型滥用工况下热失控防控效应缺乏系统测试与量化分析的问题,开展研究填补空白。以280 A·h LFP电池为对象,分别装配单/双面陶瓷涂覆隔膜,系统开展针刺、过热(点火/不点火对照)、过充(点火/不点火对照)3类滥用热失控测试。基于热失控理论,检测电压演化、温升、产气、质量损失和热释放特征,量化对比防控效果。结果表明,双面陶瓷涂覆隔膜电池安全性能显著优于单面隔膜电池。6 mm针刺:热失控时长延长85 s,表面峰值温度降低18 ℃,出现电压降-升的自切断效应。过热:不点火时,热失控时长延长57 s,峰值温度降低73 ℃,可燃气体浓度下降;点火时,时长延长102 s,峰值温度降低104 ℃,热释放速率峰值降低45 kW,质量损失速率大幅降低,均出现电压回升。过充:不点火时,时长延长12 s,峰值温度降低19 ℃;点火时,时长延长14 s,峰值温度降低20 ℃,热释放速率峰值降低45 kW,过充峰值电压提升24.4 V,至内短路累计充入容量显著减少。双面陶瓷涂覆隔膜能有效抑制电池早期微短路萌生与扩展,可为大容量储能电池安全设计提供实验支撑与理论依据,对保障配电网侧储能系统安全运行具有重要工程价值。

     

    Abstract: Battery energy storage devices serve as the core for secure and stable operation of distribution networks, yet their large-scale deployment raises significant safety concerns. To address the lack of systematic testing and quantitative analysis regarding the thermal runaway suppression effects of single-sided/double-sided ceramic-coated separators in large-capacity lithium iron phosphate (LFP) cells under typical abuse conditions, this research is carried out to fill the gap. Taking 280 A·h LFP cells equipped with single-sided and double-sided ceramic-coated separators respectively as research objects, three categories of abuse-induced thermal runaway tests are systematically implemented, including nail penetration, overheating (ignition/non-ignition comparison), and overcharge (ignition/non-ignition comparison). Based on thermal runaway theory, characteristic indicators such as voltage evolution, temperature rise, gas generation, mass loss, and heat release are measured to quantitatively compare the suppression performance. The results show that cells with double-sided ceramic-coated separators exhibit remarkably superior safety performance compared with those adopting single-sided ceramic separators. Under the 6 mm nail penetration condition: the thermal runaway duration is extended by 85 s, the peak surface temperature decreases by 18 ℃, and a self-cutting effect characterized by voltage drop–recovery is observed. For overheating tests: under non-ignition conditions, thermal runaway duration increases by 57 s, peak temperature drops by 73 ℃, and the concentration of flammable gases is reduced; under ignition conditions, the duration extends by 102 s, peak temperature falls by 104 ℃, the peak heat release rate decreases by 45 kW, and the mass loss rate drops substantially. Voltage rebound is captured in both cases. For overcharge tests: under non-ignition conditions, thermal runaway duration increases by 12 s and peak temperature reduces by 19 ℃; under ignition conditions, the duration extends by 14 s, peak temperature drops by 20 ℃, and the peak heat release rate declines by 45 kW. Moreover, the peak overcharge voltage rises by up to 24.4 V, and the accumulated charged capacity before internal short circuit is significantly lowered. It can be concluded that the double-sided ceramic-coated separator can effectively suppress the initiation and propagation of early micro-short circuits inside batteries. These findings can provide reliable experimental support and theoretical basis for the safety design of large-capacity energy storage batteries, and bears significant engineering value for ensuring the safe operation of energy storage systems on distribution network side.

     

/

返回文章
返回