Abstract
Efficient management of large-capacity lithium iron phosphate batteries within a reasonable temperature range and maintenance of temperature consistency among batteries are a crucial prerequisite for the safe and stable operation of electrochemical energy storage systems. To enhance the thermal management capability of large-capacity battery energy storage systems, a composite thermal management system based on liquid cooling combined with phase change materials is proposed. Firstly, taking a 280 Ah lithium iron phosphate battery as the research object, we established a three-dimensional battery electro-thermal coupling model by considering battery size, heat generation from busbar, etc. The model is then extended to a module system with 52 battery cells connected in series to obtain its temperature distribution characteristics. Subsequently, a liquid cooling plate is added at the bottom of the module, and by changing the flow rate of the cooling liquid, the average temperature, maximum temperature difference, and pressure difference at the inlet and outlet of the flow channel of different batteries within the module are compared. The appropriate flow rate is selected based on a comprehensive consideration of energy consumption and effect. Finally, on the basis of liquid cooling, phase change materials are added to fill the gaps between batteries within the module to achieve a composite thermal management method by combining liquid cooling and phase change materials. The results show that, during discharge, the maximum temperature difference is within 1.5 ℃ and the highest average temperature is 51.93 ℃ when using the composite thermal management method. Compared with the single liquid cooling thermal management, the maximum temperature difference and the highest average temperature are further reduced by 1.1 ℃ and 3.01 ℃, respectively, proving the effectiveness of the composite thermal management system.
| Translated title of the contribution | Composite Thermal Management of Battery Energy Storage System Based on Liquid Cooling and Phase Change Materials |
|---|---|
| Original language | Chinese (Traditional) |
| Pages (from-to) | 2865-2875 |
| Number of pages | 11 |
| Journal | Gaodianya Jishu/High Voltage Engineering |
| Volume | 52 |
| Issue number | 6 |
| DOIs | |
| State | Published - 30 Jun 2026 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
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