Parametric study and optimization on novel f ork‐type m ini‐channel network cooling plates for a Li‐ion battery module under high discharge current rates

Author(s):  
Qing Li ◽  
Hang‐bo Shi ◽  
Gongnan Xie ◽  
Zhongliang Xie ◽  
Huan‐ling Liu
2012 ◽  
Vol 37 (6) ◽  
pp. 617-630 ◽  
Author(s):  
Ali Awarke ◽  
Martin Jaeger ◽  
Oezen Oezdemir ◽  
Stefan Pischinger

Energies ◽  
2020 ◽  
Vol 13 (9) ◽  
pp. 2387
Author(s):  
Van-Thanh Ho ◽  
Kyoungsik Chang ◽  
Sang Wook Lee ◽  
Sung Han Kim

This paper presents a three-dimensional modeling approach to simulate the thermal performance of a Li-ion battery module for a new urban car. A single-battery cell and a 52.3 Ah Li-ion battery module were considered, and a Newman, Tiedemann, Gu, and Kim (NTGK) model was adopted for the electrochemical modeling based on input parameters from the discharge experiment. A thermal–electrochemical coupled method was established to provide insight into the temperature variations over time under various discharge conditions. The distribution temperature of a single-battery cell was predicted accurately. Additionally, in a 5C discharge condition without a cooling system, the temperature of the battery module reached 114 °C, and the temperature difference increased to 25 °C under a 5C discharging condition. This condition led to the activation of thermal runaway and the possibility of an explosion. However, the application of a reasonable fan circulation and position reduced the maximum temperature to 49.7 °C under the 5C discharge condition. Moreover, accurate prediction of the temperature difference between cell areas during operation allowed for a clear understanding and design of an appropriate fan system.


2019 ◽  
Vol 814 ◽  
pp. 307-313
Author(s):  
Gu Yu Yu ◽  
Sum Wai Chiang ◽  
Wei Chen ◽  
Hong Da Du

A novel thermal management system (TMS) for Li-ion battery module using phase change material (PCM) and cooling water as the heat dissipation source to control battery temperature rise has been developed. Graphite sheets were applied to compensate low thermal conductivity of battery and PCM and improve temperature uniformity of the batteries. One discharge (1C rate)-charge (2C rate) circle was applied in battery modules to test the effectiveness of this TMS. A three dimensional numerical model of the battery module with the TMS was conducted. The results show that this TMS basically meets the demand about the maximum temperature difference of battery module and totally keeps the maximum temperature within the optimum operating temperature range (≤45°C).


2012 ◽  
Vol 219 (4) ◽  
pp. 2231-2245 ◽  
Author(s):  
Karthik Somasundaram ◽  
Erik Birgersson ◽  
Arun Sadashiv Mujumdar

2015 ◽  
Vol 30 (2) ◽  
pp. 507-514 ◽  
Author(s):  
Unai Iraola ◽  
Iosu Aizpuru ◽  
Lorea Gorrotxategi ◽  
Jose Maria Canales Segade ◽  
Ander Etxeberria Larrazabal ◽  
...  

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