Oyewola Olanrewaju M, Idowu Emmanuel T, Drabo Mebougna L
Department of Mechanical Engineering, University of Alaska Fairbanks, Alaska, USA.
Department of Mechanical Engineering, Ajayi Crowther University, Oyo, Nigeria.
Heliyon. 2024 Sep 27;10(19):e38585. doi: 10.1016/j.heliyon.2024.e38585. eCollection 2024 Oct 15.
Battery thermal management systems (BTMSs) are used in electric vehicles (EVs) to regulate the heat generated by batteries while in use. Existing research on the improvement of BTMSs revealed that more research can be done by exploring different strategies to extend the service life and capabilities of EV batteries beyond the current limitations. In this study, effects of orientation of baffles; straight ( ), inclined ( and ), height of baffles, thickness of baffles, positioning of baffles and number of baffles on the performance of conventional Z - Type BTMS were studied using Computational Fluid Dynamics (CFD) approach. The CFD approach was validated with existing experimental result from literature. Findings from the study showed that for straight baffle, the maximum temperature ( ) reduces as the height of baffles decreases. Furthermore, increasing the baffle thickness from 1 mm to 2 mm, produced reduction in by 0.26 K. For inclined baffles, by comparing the BTMS without baffles and BTMS with 2 baffles, and maximum temperature difference ( ) reduced by 0.82 K and 0.68 K, respectively at angle , and reduced by 1.65 K and 1.43 K, respectively at angle . The BTMS with 2 baffles, inclined at angle , with height of 6 mm and thickness of 1 mm, yielded the optimum (Lowest) value of 333.15 K, a reduction by 2.65 K when compared to the conventional Z - Type BTMS. This was also accompanied with a slight increase in by 1.12 Pa. In conclusion, it can be said that findings from this study will be beneficial in enhancing the design of BTMSs through adequate selection and utilization of baffles orientation.
电池热管理系统(BTMS)用于电动汽车(EV),以调节电池在使用过程中产生的热量。现有关于改进BTMS的研究表明,通过探索不同策略来延长电动汽车电池的使用寿命和性能,使其超越当前限制,还有更多研究可做。在本研究中,使用计算流体动力学(CFD)方法研究了折流板的方向(直形( )、倾斜形( 和 ))、折流板高度、折流板厚度、折流板位置以及折流板数量对传统Z型BTMS性能的影响。CFD方法通过文献中的现有实验结果进行了验证。研究结果表明,对于直形折流板,随着折流板高度的降低,最高温度( )会降低。此外,将折流板厚度从1毫米增加到2毫米, 降低了0.26K。对于倾斜折流板,通过比较无折流板的BTMS和有2个折流板的BTMS,在 角度时, 和最大温差( )分别降低了0.82K和0.68K,在 角度时分别降低了1.65K和1.43K。有2个折流板、倾斜角度为 、高度为6毫米且厚度为1毫米的BTMS产生了333.15K的最佳(最低) 值,与传统Z型BTMS相比降低了2.65K。同时, 略有增加,为1.12Pa。总之,可以说本研究的结果将有助于通过对折流板方向进行适当选择和利用来改进BTMS的设计。