用于电池热管理和失控保护的夹层式防火柔性复合相变材料 PEE@EBF 的性能

IF 6.1 2区 工程技术 Q2 ENERGY & FUELS Applied Thermal Engineering Pub Date : 2024-11-04 DOI:10.1016/j.applthermaleng.2024.124813
Junjie Shen , Yanghan Su , Xiaobin Xu , Xing Chen , Xiaolin Wang , Junling Wang , Fei Zhou
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引用次数: 0

摘要

为了降低锂离子电池过热和热失控的风险,本研究提出了一种新型夹层式防火柔性复合相变材料(CPCM),即 PEE@EBF。核心材料(PEE)由石蜡(PW)、膨胀石墨(EG)和乙烯-醋酸乙烯共聚物(EVA)熔融混合而成。外层是涂在 PEE 表面的防火涂层 (EBF),由环氧树脂 (EP)、氮化硼 (BN) 和复合阻燃剂 (CFR) 组成。测试结果表明,PEE@EBF 保持了结构的完整性,在 80 °C 下加热 5 小时后没有出现明显的变形或泄漏。PEE@EBF 还显示出 166.6 J/g 的高潜热、0.8 W/(m∙K) 的热导率和优异的电绝缘性能。此外,它还达到了 UL94 V-0 阻燃等级,峰值热释放率(PHRR)和峰值烟雾产生率(PSPR)分别显著降低了 67.8% 和 81.8%。与自然对流冷却相比,在 4℃ 的长期循环过程中,采用 PEE@EBF 的模块中电池的峰值温度 (PT) 和最大温差 (MTD) 分别降低了 11.8 ℃ 和 4 ℃。此外,电池热失控过程中产生的热量被 PEE@EBF 有效吸收和转移,使不可逆的热失控过程延迟了 633 秒,这表明夹层式 PEE@EBF 适用于锂离子电池或储能设备的热管理和防火保护。
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Performance of sandwich type fire-resistant flexible composite phase change material PEE@EBF for battery thermal management and runaway protection
To mitigate the risks of overheating and thermal runaway in lithium-ion batteries, this study proposes a novel sandwich-type fire-resistant flexible composite phase change material (CPCM), referred to as PEE@EBF. The core material (PEE) was created by melt-blending paraffin wax (PW), expanded graphite (EG), and ethylene–vinyl acetate copolymer (EVA). The outer layer, a fire-resistant coating (EBF), was applied to the surface of PEE and consists of epoxy resin (EP), boron nitride (BN), and the composite flame retardant (CFR). Test results demonstrated that PEE@EBF maintained structural integrity, exhibiting no significant deformation or leakage after being heated at 80 °C for 5 h. PEE@EBF also displayed a high latent heat of 166.6 J/g, thermal conductivity of 0.8 W/(m∙K), and excellent electrical insulation properties. Furthermore, it achieved a UL94 V-0 flame retardant rating, with notable reductions in peak heat release rate (PHRR) and peak smoke production rate (PSPR) by 67.8 % and 81.8 %, respectively. During long-term cycling at 4C, the peak temperature (PT) and maximum temperature difference (MTD) of batteries in the module incorporating PEE@EBF were reduced by 11.8 °C and 4 °C, respectively, compared to natural convection cooling. In addition, the heat generated during the battery thermal runaway was efficiently absorbed and transferred by PEE@EBF, delaying the irreversible thermal runaway process by 633 s. This indicated that the sandwich-type PEE@EBF was suitable for thermal management and fire protection in lithium-ion batteries or energy storage devices.
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来源期刊
Applied Thermal Engineering
Applied Thermal Engineering 工程技术-工程:机械
CiteScore
11.30
自引率
15.60%
发文量
1474
审稿时长
57 days
期刊介绍: Applied Thermal Engineering disseminates novel research related to the design, development and demonstration of components, devices, equipment, technologies and systems involving thermal processes for the production, storage, utilization and conservation of energy, with a focus on engineering application. The journal publishes high-quality and high-impact Original Research Articles, Review Articles, Short Communications and Letters to the Editor on cutting-edge innovations in research, and recent advances or issues of interest to the thermal engineering community.
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