Temperature control of battery modules through composite phase change materials with dual operating temperature regions

被引:82
|
作者
Ye, Guohua [1 ]
Zhang, Guoqing [1 ]
Jiang, Liqin [2 ]
Yang, Xiaoqing [1 ]
机构
[1] Guangdong Univ Technol, Sch Mat & Energy, Guangzhou 510006, Peoples R China
[2] Guangdong Zhuhai Supervis Testing Inst Qual & Metr, Zhuhai, Peoples R China
基金
中国国家自然科学基金;
关键词
Battery thermal management; Phase change material; Phase change temperature region; Thermal conductivity; Safety; Lithium -ion battery; THERMAL MANAGEMENT-SYSTEM; ENERGY-STORAGE; ION BATTERY; STABILITY; PERFORMANCE;
D O I
10.1016/j.cej.2022.137733
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The phase change material (PCM)-based battery thermal management technology still remains a contradiction of guaranteeing a suitable operating temperature (20-40 degrees C) of the batteries under regular working conditions, while avoiding the malfunction of the PCM under high ambient temperature (>40 degrees C). Therefore, a novel composite PCM (CPCM) possessing dual phase change temperature regions (PCTRs) is designed herein by in-situ constructing a phase-changeable polymer (PCP) framework in the polyethylene glycol (PEG)/expanded graphite (EG) slurry. As prepared, the lower PCTR at 31.7-42.1 degrees C from the PCP framework provides a latent heat of 35.0 J g-1, while the higher PCTR at 42.1-51.2 degrees C from the PEG offers a latent heat of 68.3 J g-1. Additionally, the nanoscaled PCP framework strongly adsorbs the PEG, preventing the leakage phenomenon (mass loss < 1%), and the uniformly dispersed EG endows the CPCM with a high thermal conductivity of 1.98 W m-1 K-1. In consequence, under the normal ambient temperature of 25 degrees C, the lower PCTR effectively keeps the battery module operating within the suitable temperature range of 25.9-34.9 degrees C and with a low temperature difference (Delta T) of 2.4 degrees C at the discharge rate of 1C. For comparison, the battery module adopting classical CPCM with a single PCTR at 40.9-55.1 degrees C demonstrates a much higher temperature range and maximum Delta T at 28.0-40.9 degrees C and 4.8 degrees C, respectively. Under the high ambient temperature of 40 degrees C, the higher PCTR starts to work like the single PCTR of traditional CPCMs, and controls the Tmax and Delta T of the module below 49.2 and 2.2 degrees C at the discharge rate of 1C, respectively, preventing thermal hazards.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Novel and durable composite phase change thermal energy storage materials with controllable melting temperature
    Haiting Wei
    Shuiyuan Yang
    Cuiping Wang
    Changrui Qiu
    Kairui Lin
    Jiajia Han
    Yong Lu
    Xingjun Liu
    Journal of Materials Science & Technology, 2021, 86 (27) : 11 - 19
  • [42] Development of Composite Microencapsulated Phase Change Materials for Multi-Temperature Thermal Energy Storage
    Su, Weiguang
    Darkwa, Jo
    Zhou, Tongyu
    Du, Dengfeng
    Kokogiannakis, Georgios
    Li, Yilin
    Wang, Li
    Gao, Liying
    CRYSTALS, 2023, 13 (08)
  • [43] A strategy for designing microencapsulated composite phase change thermal storage materials with tunable melting temperature
    Wei, Haiting
    Wang, Cuiping
    Yang, Shuiyuan
    Han, Jiajia
    Yang, Mujin
    Zhang, Jinbin
    Lu, Yong
    Liu, Xingjun
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2019, 203
  • [44] Novel and durable composite phase change thermal energy storage materials with controllable melting temperature
    Wei, Haiting
    Yang, Shuiyuan
    Wang, Cuiping
    Qiu, Changrui
    Lin, Kairui
    Han, Jiajia
    Lu, Yong
    Liu, Xingjun
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2021, 86 : 11 - 19
  • [45] The development of middle and high temperature phase change materials
    Wu Jianfeng
    Xu Xiaohong
    Li Jian
    Luo Wenhui
    Deng Dakan
    PROCEEDINGS OF ISES SOLAR WORLD CONGRESS 2007: SOLAR ENERGY AND HUMAN SETTLEMENT, VOLS I-V, 2007, : 2757 - 2760
  • [46] Effect of temperature on mortars with incorporation of phase change materials
    Cunha, Sandra
    Aguiar, Jose
    Pacheco-Torgal, Fernando
    CONSTRUCTION AND BUILDING MATERIALS, 2015, 98 : 89 - 101
  • [47] Phase-change materials for intelligent temperature regulation
    Guo, Ruihan
    Shan, Linbo
    Wu, Yonghuang
    Cai, Yimao
    Huang, Ru
    Ma, He
    Tang, Kechao
    Liu, Kai
    MATERIALS TODAY ENERGY, 2022, 23
  • [48] Temperature reduction due to the application of phase change materials
    Voelker, Conrad
    Kornadt, Oliver
    Ostry, Milan
    ENERGY AND BUILDINGS, 2008, 40 (05) : 937 - 944
  • [49] A novel stable and flexible composite phase change materials for battery thermal management
    Liu, Xianqing
    Wang, Changhong
    Wu, Tingting
    Li, Zhuoming
    Wu, Chili
    APPLIED THERMAL ENGINEERING, 2022, 212
  • [50] A review of composite phase change materials used in battery thermal management systems
    Jie, Li
    Zhang, Jiakai
    Fan, Yi
    Yu, Zhipeng
    Pan, Weiguo
    JOURNAL OF ENERGY STORAGE, 2025, 112