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胺类添加剂对NCM811‖SiC电池热失控抑制效果研究

侯博文 何龙 冯旭宁 张伟峰 王莉 何向明

电化学2023,Vol.29Issue(8):13-20,8.
电化学2023,Vol.29Issue(8):13-20,8.DOI:10.13208/j.electrochem.2211141

胺类添加剂对NCM811‖SiC电池热失控抑制效果研究

Effect of Amine Additives on Thermal Runaway Inhibition of SiC‖NCM811 Batteries

侯博文 1何龙 2冯旭宁 1张伟峰 1王莉 3何向明3

作者信息

  • 1. 清华大学汽车安全与节能国家重点实验室,北京100084
  • 2. 上海理工大学机械工程学院汽车工程系,上海200093
  • 3. 清华大学核能与新能源技术研究院,北京,100084
  • 折叠

摘要

Abstract

The high energy density of NCM batteries with high nickel content is a key advantage in replacing fossil fuels and promoting clean energy development,at the same time,is also a fundamental cause of serious safety hazards in batteries.Primary and secondary amines can lead to ring-opening polymerization of common ethylene carbonate electrolytes,resulting in an isolation layer between the cathode and the anode,and improving the thermal safety of the battery.In this work,the safety of batteries is considered both at the material level and at the cell level,based on the chemical reactions between amines and the battery components.At the material level,the effect of the presence or absence of amine additives on the thermal stability of the different components of the lithium-ion battery was tested by differential scanning calorimetry.At the cell level,the safety of the whole battery with and without additives was tested by using accelerating rate calorimeter to extract thermal runaway(TR)characteristic temperatures.The addition of the amine resulted in an earlier onset of some of the chemical reactions between the battery components,as well as a significant reduction in total heat release and a decrease in the maximum temperature rise rate,such that TR,was effectively suppressed.

关键词

锂电池/热失控抑制//电解液/开环聚合

Key words

Lithium-ion batteries/Thermal runaway inhibition/Amine additive/Electrolyte/Polymerization reaction

引用本文复制引用

侯博文,何龙,冯旭宁,张伟峰,王莉,何向明..胺类添加剂对NCM811‖SiC电池热失控抑制效果研究[J].电化学,2023,29(8):13-20,8.

基金项目

This work is supported by the National Natural Science Foundation of China(NO.52076121). (NO.52076121)

电化学

OA北大核心CSTPCD

1006-3471

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