Liu Ziqiang, Huang Juhua, Cao Ming, Jiang Guiwen, Hu Jin, Chen Qiang
Department of Mechanical Engineering, Nanchang University, Nanchang 330031, China.
Materials (Basel). 2020 Oct 26;13(21):4763. doi: 10.3390/ma13214763.
To improve the problems of large interface thermal resistance and low heat dissipation efficiency in battery thermal management (BTM), this paper uses methyl silicone oil as the matrix, AIN, copper powder (CP), and carbon fiber (CF) as thermally conductive fillers, and acetone and stearic acid as particle surface modification components. A variety of binary thermal silicone greases (TSGs) with different compositions were prepared. Different instruments were used to test the material properties of TSGs, and a better TSG was selected to coat the interface between battery and phase change material (PCM) for battery charging and discharging experiments. Through the analysis of experimental data, it was found that among the TSGs made of three mixed fillers (AIN/CP, AIN/CF, CP/CF), the three TSGs had good thermal stability, and their thermal degradation temperature both exceeded 300 °C. As the ratio of thermally conductive filler was gradually changed from 5:1 to 1:5, the TSG containing CP/CF had higher thermal conductivity and lower volume resistivity, while the TSG containing AIN/CF had the least damage due to interface wear. The acidification treatment of thermally conductive filler can improve the adsorption and compatibility of thermally conductive particles and silicone oil, and reduce the oil separation rate of TSGs. The prepared expanded graphite (EG)/paraffin wax (PW) composite phase change material (CPCM) has a relatively large latent heat of phase change, which can effectively control the temperature of the battery, but coating TSG between the battery and the CPCM can further enhance the heat dissipation effect of the battery.
为改善电池热管理(BTM)中存在的界面热阻大、散热效率低的问题,本文以甲基硅油为基体,氮化铝(AIN)、铜粉(CP)和碳纤维(CF)为导热填料,丙酮和硬脂酸为颗粒表面改性组分,制备了多种不同组成的二元导热硅脂(TSG)。使用不同仪器测试TSG的材料性能,并选择性能较好的TSG涂覆在电池与相变材料(PCM)之间进行电池充放电实验。通过对实验数据的分析发现,在由三种混合填料(AIN/CP、AIN/CF、CP/CF)制成的TSG中,这三种TSG具有良好的热稳定性,其热降解温度均超过300℃。随着导热填料比例从5:1逐渐变为1:5,含CP/CF的TSG具有较高的热导率和较低的体积电阻率,而含AIN/CF的TSG因界面磨损造成的损伤最小。对导热填料进行酸化处理可提高导热颗粒与硅油的吸附性和相容性,并降低TSG的析油率。制备的膨胀石墨(EG)/石蜡(PW)复合相变材料(CPCM)具有较大的相变潜热,能有效控制电池温度,但在电池与CPCM之间涂覆TSG可进一步增强电池的散热效果。