共 54 条
- [1] Pesaran A.A., Lithium-ion battery technologies for electric vehicles: Progress and challenges, IEEE Electr. Mag., 11, 2, pp. 35-43, (2023)
- [2] Almadani M., Oni O.E., Longe O.M., Olatomiwa L., Comparison of battery chemistries for electric vehicle applications, pp. 23-25, (2024)
- [3] Amer M.M., Shouman M.A., Salem M.S., Kannan A.M., Hamed A.M., Advances in thermal management systems for Li-Ion batteries: A review, Therm. Sci. Eng. Prog., (2024)
- [4] Chavan S., Venkateswarlu B., Salman M., Liu J., Pawar P., Joo S.W., Choi G.S., Kim S.C., Thermal management strategies for lithium-ion batteries in electric vehicles: Fundamentals, recent advances, thermal models, and cooling techniques, Int. J. Heat Mass Transfer, 232, (2024)
- [5] Luo J., Zou D., Wang Y., Wang S., Huang L., Battery thermal management systems (BTMs) based on phase change material (PCM): A comprehensive review, Chem. Eng. J., 430, (2022)
- [6] Kalogiannis T., Akbarzadeh M., Hosen M.S., Behi H., De Sutter L., Jin L., Jaguemont J., Van Mierlo J., Berecibar M., Effects analysis on energy density optimization and thermal efficiency enhancement of the air-cooled Li-ion battery modules, J. Energy Storage, 48, (2022)
- [7] Kumar S., Akula R., Balaji C., An inverse methodology to estimate the thermal properties and heat generation of a Li-ion battery, Appl. Therm. Eng., 236, (2024)
- [8] Sun P., Bisschop R., Niu H., Huang X., A review of battery fires in electric vehicles, Fire Technol., 56, 4, pp. 1361-1410, (2020)
- [9] Wang C., Xi H., Wang M., Investigation on forced air-cooling strategy of battery thermal management system considering the inconsistency of battery cells, Appl. Therm. Eng., 214, (2022)
- [10] Zhao G., Wang X., Negnevitsky M., A study of variable cell spacings to the heat transfer efficiency of air-cooling battery thermal management system, Appl. Sci., 11, 23, (2021)