卡森电解质在锂离子电池多孔电极中的热管理性能研究

Tareq Manzoor, S. Iqbal, Tauseef Anwer, Sanaullah Manzoor, Ghulam Mustafa, Habib Ullah Manzoor
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引用次数: 0

摘要

锂离子电池(lib)中的Casson电解液的研究具有重要意义,因为它们具有更强的操作条件和充放电过程中的其他挑战,并且具有改进的热管理能力和增强的安全性。这进一步优化了热管理,避免了热点或热失控的机会,从而使lib更安全。在这项研究中,非牛顿流体作为电解质的对流载荷是非达西可渗透多孔电极中与平板和平板表面相关的卡森型边界层流动进行了研究。我们采用最优同次渐近方法来求解系统的方程。研究了Casson因子、渗透率、流动约束、与流动和热耗散相关的Prandtl值以及边界层剖面等因素的作用和影响。结果表明,热参数和孔隙率对系统有影响,孔隙率的增加实际上降低了传热效果和传热比例。本研究的结果与开发更有效的多孔电极以实现高性能和长循环寿命有关。这些研究有助于提高受电解质非牛顿行为影响的质量和传热特性的利用率,从而有助于设计具有更高能量密度和快速充放电速率的下一代锂离子电池。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation of Thermal Management Capacity of Casson Electrolytes in Porous Electrodes in Lithium-Ion Battery Applications

Investigation of Thermal Management Capacity of Casson Electrolytes in Porous Electrodes in Lithium-Ion Battery Applications

The study of the Casson electrolyte in lithium-ion batteries (LIBs) is important because of their complexities due to tougher operational conditions and other challenges during charging–discharging challenges with their improved thermal management capacity and enhanced safety. This further optimizes the thermal management avoiding chances of hot spots or thermal runaway, thereby making LIBs safer. In this investigation, convective loads for non-Newtonian fluid as electrolyte Casson-type boundary layer flow related to plate and flat surfaces in non-Darcy permeable porous electrodes have been deliberated. We have employed the Optimal Homopotic Asymptotic Method technique to solve the equation of the system. The effects and influences of Casson factors, permeability, flow constraints, Prandtl values related to flow and thermal dissipation, and boundary layer profiles have been studied. From the results, it is concluded that thermal parameters and porousness have affected the system, and the upsurge in the porousness actually decreases heat transport effects and proportions. The results of this study are relevant to the development of more effective porous electrodes for achieving high performance with long cycle life. These studies help improve the utilization of mass and heat transfer properties, as affected by the non-Newtonian behavior of the electrolyte, to help in the design of next-generation LIBs with higher energy density along with fast charge/discharge rates.

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