Experimental investigation of the thermal management system of a battery pack using a thermoelectric air-cooling module

被引:23
作者
Sirikasemsuk, Sarawut [1 ]
Wiriyasart, Songkran [1 ]
Naphon, Paisarn [1 ]
机构
[1] Srinakharinwirot Univ, Dept Mech Engn, Thermo Fluid & Heat Transfer Enhancement Lab TFHT, Fac Engn, 63 Rangsit Nakhornnayok, Nakhorn Nayok 26120, Thailand
关键词
air cooling; thermoelectric air-cooling module; thermal management system; energy storage; battery pack; LITHIUM-ION BATTERY; PHASE-CHANGE MATERIAL; HEAT-GENERATION; TEMPERATURE UNIFORMITY; STRUCTURE OPTIMIZATION; FLOW CONFIGURATION; PERFORMANCE; DESIGN; PIPE; STRATEGY;
D O I
10.1002/htj.22596
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper, the temperature response of a lithium-ion type 18650 battery pack cooled by a thermoelectric air-cooling module is presented. The effects of the airflow rate, on-off cooling fan position, charging and discharging rate and cooling by the thermoelectric air-cooling module are investigated. The charging and discharging procedures with different current rates of 2 A (0.06 C), 3 A (0.09 C), and 4 A (0.12 C) are investigated. The results showed that different test conditions of the thermoelectric air-cooling module have a substantial effect on the temperature of the battery pack. It was demonstrated that a thermoelectric air-cooling module has a decreased battery temperature of lower than 40 degrees C. The operating conditions of the cooling fans have a substantial effect on battery temperature. The experiment in which all the cooling fans are turned on shows a higher cooling capacity than natural air cooling by approximately 16%-57%. However, when setting the on-off position of the fans that are installed in different positions, the cooling capacity when the fans at the inlet and thermoelectric cooling heat sink are turned on and the fan at the outlet battery pack is turned off is slightly less than that when all the cooling fans are turned on by approximately 25%-57%. Therefore, it can be selected as an optimum for cooling the battery pack due to less power consumption and noise issues. The proposed research can be implemented as a guideline for the cooling system of energy storage, such as small electric vehicle platforms, ground batteries, and solar energy storage.
引用
收藏
页码:6384 / 6402
页数:19
相关论文
共 56 条
[21]   Experimental study of a cylindrical lithium ion battery thermal management using phase change material composites [J].
Karimi, Gholamreza ;
Azizi, Mohammadmehdi ;
Babapoor, Aziz .
JOURNAL OF ENERGY STORAGE, 2016, 8 :168-174
[22]   An alternative cooling system to enhance the safety of Li-ion battery packs [J].
Kizilel, Riza ;
Sabbah, Rami ;
Selman, J. Robert ;
Al-Hallaj, Said .
JOURNAL OF POWER SOURCES, 2009, 194 (02) :1105-1112
[23]   Water cooling based strategy for lithium ion battery pack dynamic cycling for thermal management system [J].
Li, Ke ;
Yan, Jiajia ;
Chen, Haodong ;
Wang, Qingsong .
APPLIED THERMAL ENGINEERING, 2018, 132 :575-585
[24]   Simulation of cooling plate effect on a battery module with different channel arrangement [J].
Li, Xinke ;
Zhao, Jiapei ;
Duan, Jiabin ;
Panchal, Satyam ;
Yuan, Jinliang ;
Fraser, Roydon ;
Fowler, Michael ;
Chen, Ming .
JOURNAL OF ENERGY STORAGE, 2022, 49
[25]   A hybrid thermal management system for lithium ion batteries combining phase change materials with forced-air cooling [J].
Ling, Ziye ;
Wang, Fangxian ;
Fang, Xiaoming ;
Gao, Xuenong ;
Zhang, Zhengguo .
APPLIED ENERGY, 2015, 148 :403-409
[26]   Dynamic thermal characteristics of heat pipe via segmented thermal resistance model for electric vehicle battery cooling [J].
Liu, Feifei ;
Lan, Fengchong ;
Chen, Jiqing .
JOURNAL OF POWER SOURCES, 2016, 321 :57-70
[27]   Design and parametric optimization of thermal management of lithium-ion battery module with reciprocating air-flow [J].
Liu Yan-ping ;
Ouyang Chen-zhi ;
Jiang Qing-bai ;
Liang Bo .
JOURNAL OF CENTRAL SOUTH UNIVERSITY, 2015, 22 (10) :3970-3976
[28]   Shortcut computation for the thermal management of a large air-cooled battery pack [J].
Liu, Zhongming ;
Wang, Yuxin ;
Zhang, Jun ;
Liu, Zhibin .
APPLIED THERMAL ENGINEERING, 2014, 66 (1-2) :445-452
[29]   Thermal Management of Densely-packed EV Battery With Forced Air Cooling Strategies [J].
Lu, Z. ;
Meng, X. Z. ;
Wei, L. C. ;
Hu, W. Y. ;
Zhang, L. Y. ;
Jin, L. W. .
CUE 2015 - APPLIED ENERGY SYMPOSIUM AND SUMMIT 2015: LOW CARBON CITIES AND URBAN ENERGY SYSTEMS, 2016, 88 :682-688
[30]   Parametric study of forced air cooling strategy for lithium-ion battery pack with staggered arrangement [J].
Lu, Zhao ;
Yu, Xiaoling ;
Wei, Lichuan ;
Qiu, Yalin ;
Zhang, Liyu ;
Meng, Xiangzhao ;
Jin, Liwen .
APPLIED THERMAL ENGINEERING, 2018, 136 :28-40