Journal of Automotive Safety and Energy ›› 2026, Vol. 17 ›› Issue (2): 209-217.DOI: 10.3969/j.issn.1674-8484.2026.02.006
• Automotive Energy Efficiency and Environment Protection • Previous Articles Next Articles
DONG Jiashuo1(
), DAN Dan1,2,*(
), WEI Mingshan1,3, ZHAO Yihang1, ZHANG Yangjun4
Received:2025-02-20
Revised:2026-02-14
Online:2026-04-30
Published:2026-04-30
CLC Number:
DONG Jiashuo, DAN Dan, WEI Mingshan, ZHAO Yihang, ZHANG Yangjun. Thermal management system for power batteries based on flat heat pipes[J]. Journal of Automotive Safety and Energy, 2026, 17(2): 209-217.
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URL: https://www.journalase.com/EN/10.3969/j.issn.1674-8484.2026.02.006
| 平板热管总长度,lFHP | 257 mm |
| 平板热管蒸发段长度,le | 181 mm |
| 平板热管绝热段长度,la | 7.6 mm |
| 平板热管冷凝段长度,lc | 68.4 mm |
| 平板热管高度,lh | 70.0 mm |
| 平板热管总厚度,tFHP | 5.0 mm |
| 外壳厚度,ts | 1.0 mm |
| 厚度,tw | 1.5 mm |
| 蒸汽腔厚度,tv | 1.5 mm |
| 翅片个数,nfin | 19 |
| 翅片长度(x方向),lfin | 20.6 mm |
| 翅片高度(z方向),hfin | 70.0 mm |
| 翅片厚度(y方向),tfin | 0.6 mm |
| 翅片间距,sfin | 3.0 mm |
| 支架长度(y方向),lr | 181.0 mm |
| 支架宽度(x方向),wr | 44.5 mm |
| 支架高度(z方向),hr | 70.0 mm |
| 圆孔直径,Rh | 9.0 mm |
| 平板热管总长度,lFHP | 257 mm |
| 平板热管蒸发段长度,le | 181 mm |
| 平板热管绝热段长度,la | 7.6 mm |
| 平板热管冷凝段长度,lc | 68.4 mm |
| 平板热管高度,lh | 70.0 mm |
| 平板热管总厚度,tFHP | 5.0 mm |
| 外壳厚度,ts | 1.0 mm |
| 厚度,tw | 1.5 mm |
| 蒸汽腔厚度,tv | 1.5 mm |
| 翅片个数,nfin | 19 |
| 翅片长度(x方向),lfin | 20.6 mm |
| 翅片高度(z方向),hfin | 70.0 mm |
| 翅片厚度(y方向),tfin | 0.6 mm |
| 翅片间距,sfin | 3.0 mm |
| 支架长度(y方向),lr | 181.0 mm |
| 支架宽度(x方向),wr | 44.5 mm |
| 支架高度(z方向),hr | 70.0 mm |
| 圆孔直径,Rh | 9.0 mm |
| [1] | Budde-Meiwes H, Drillkens J, Lunz B, et al. A review of current automotive battery technology and future prospects[J]. Proc Inst Mech Engi, Part D: J Autom Engi, 2013, 227: 761-776. |
| [2] |
Jaguemont J, Boulon L, Dubé Y. A comprehensive review of lithium-ion batteries used in hybrid and electric vehicles at cold temperatures[J]. Appl Energ, 2016, 164: 99-114.
doi: 10.1016/j.apenergy.2015.11.034 URL |
| [3] | ZENG Yuqiang, Chalise D, Lubner S D, et al. A review of thermal physics and management inside lithium-ion batteries for high energy density and fast charging[J]. Energ Stor Mater, 2021, 41: 264-288. |
| [4] |
ZHANG Caiping, JIANG Yan, JIANG Jiuchun, et al. Study on battery pack consistency evolutions and equilibrium diagnosis for serial- connected lithium-ion batteries[J]. Appl Energ, 2017, 207: 510-519.
doi: 10.1016/j.apenergy.2017.05.176 URL |
| [5] | Dwivedi A, Kumar R, Goel V, et al. A comprehensive review on heat pipe-assisted hybrid battery thermal management strategies: Opportunities, challenges and its future aspects[J]. J Energ Stor, 2025, 112: 115475. |
| [6] | Togun H, Basem A, Dhabab J M, et al. A comprehensive review of battery thermal management systems for electric vehicles: Enhancing performance, sustainability, and future trends[J]. Int'l J Hydro Energ, 2025, 97: 1077-1107. |
| [7] | Fathoni A M, Putra N, Mahlia T M I. A systematic review of battery thermal management systems based on heat pipes[J]. J Energ Stor, 2023, 73: 109081. |
| [8] | Chaudhry H N, Hughes B R, Ghani S A. A review of heat pipe systems for heat recovery and renewable energy applications[J]. Renew Sustain Energ Rev, 2012, 16(4): 2249-2259. |
| [9] |
ZHANG Zhuqian, WEI Ke. Experimental and numerical study of a passive thermal management system using flat heat pipes for lithium-ion batteries[J]. Appl Therm Engineering, 2020, 166: 114660.
doi: 10.1016/j.applthermaleng.2019.114660 URL |
| [10] |
Behi H, Karimi D, Behi M, et al. A new concept of thermal management system in Li-ion battery using air cooling and heat pipe for electric vehicles[J]. Appl Therm Engineering, 2020, 174: 115280.
doi: 10.1016/j.applthermaleng.2020.115280 URL |
| [11] |
HU Hao, XU Xiaoming, LI Renzheng, et al. Study the heat dissipation performance of lithium-ion battery liquid cooling system based on flat heat pipe[J]. Fire Mater, 2022, 46(1): 168-180.
doi: 10.1002/fam.2963 |
| [12] | 邓莎莎. 基于大倍率放电和脉冲循环实验的铝板—热管的电池热管理[D]. 重庆: 重庆大学, 2020. |
| DENG Shasha. Aluminum plate-heat pipe battery thermal management based on large rate discharge and pulse cycle experiment[D]. Chongqing: Chongqing University, 2020. (in Chinese) | |
| [13] | ZHU Futang, WANG Yueqi, XIE Yi, et al. Analysis on battery thermal management system based on flat heat pipe at high discharging rate[J]. Appl Therm Engi, 2024, 254: 123798. |
| [14] | Doyle M, Fuller T F, Newman J. Modeling of galvanostatic charge and discharge of the lithium/polymer/insertion cell[J]. J Electrochem Soc, 1993, 140(6): 1526-1553. |
| [15] | Prada E, Di Domenico D, Creff Y, et al. Simplified electro-chemical and thermal model of LiFePO4-graphite Li-ion batteries for fast charge applications[J]. J Electrochem Soc, 2012, 159(9): A1508-A1519. |
| [16] | Bernardi D, Pawlikowski E, Newman J. A general energy balance for battery systems[J]. J Electrochem Soc, 1985, 132(1): 5-12. |
| [17] | Thomas K E, Newman J. Thermal modeling of porous insertion electrodes[J]. J Electrochem Soc, 2003, 150(2): A176-A192. |
| [18] | 丹聃. 平板热管式动力电池热管理系统传热控制研究[D]. 北京: 清华大学, 2021. |
| DAN Dan. Heat transfer control of flat heat pipe based battery thermal management system[D]. Beijing: Tsinghua University, 2021. (in Chinese) | |
| [19] | WANG Yueqi, MU Xingyu, XIE Yi, et al. A coupled model and thermo-electrical performance analysis for flat heat pipe-based battery thermal management system[J]. Appl Therm Engi, 2023, 233: 121116. |
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| [7] | WANG Fang, FAN Bin, LIU Shiqiang, Zhang Zhending, HUANG Xin, Zhang Wenhua. Safety behaviors of LiFePO4 power battery during normal cycles [J]. Journal Of Automotive Safety And Energy, 2014, 5(02): 180-184. |
| [8] | ZHANG Jiangyun, ZHANG Guoqing, ZHANG Lei, RAO Zhonghao. Simulation and Experiment on Air-Cooled Thermal Energy Management of Lithium-Ion Power Batteries [J]. Journal of Automotive Safety and Energy, 2011, 2(2): 181-184. |
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