材料科学
热失控
储能
电池(电)
危害
热能储存
可靠性(半导体)
相变材料
可靠性工程
计算机科学
汽车工程
相变
工程类
工程物理
功率(物理)
有机化学
物理
化学
生物
量子力学
生态学
作者
Jingwen Weng,Qiqiu Huang,Xinxi Li,Guoqing Zhang,Dongxu Ouyang,Mingyi Chen,Anthony Chun Yin Yuen,Ao Li,Eric Lee,Wensheng Yang,Jian Wang,Xiaoqing Yang
标识
DOI:10.1016/j.ensm.2022.09.007
摘要
Although lithium-ion batteries are increasingly being used to achieve cleaner energy, their thermal safety is still a major concern, particularly in the fields of energy-storage power stations and electric vehicles with high energy-storage density. Therefore, the battery thermal management systems (BTMs) have been extensively applied, among which phase-change-material (PCM)-based BTMs are being developed at a high growth rate. As highlighted here, because of the risk of battery thermal hazards such as thermal runaway or battery fires, meeting the prerequisites of PCM-based BTMs is imperative not only for aiding in heat dissipation in regular operation conditions, but also for facilitating thermal hazard mitigation in the case of extreme accidents. The thermo-physical properties of modified PCMs are compared, highlighting their thermal stability and flame retardancy. Structure-enhanced PCM-based BTMs are compared in terms of their structural design for hazard mitigation. Finally, future research directions based on critical thinking are proposed for the use of PCM-based BTMs in system resilience. We anticipate that this review will provide new insights and draw more attention to the material/system reliability of self-safety PCM-based BTMs in future designs, especially in terms of thermal safety issues.
科研通智能强力驱动
Strongly Powered by AbleSci AI