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Thermal Characterizations of a Lithium Titanate Oxide-Based Lithium-Ion Battery Focused on Random and Periodic Charge-Discharge Pulses

机译:钛酸锂基锂离子电池的热表征聚焦在随机和周期性充电 - 放电脉冲上

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摘要

Thermal characterization of lithium-ion batteries is essential to improve an efficient thermal management system for lithium-ion batteries. Besides, it is needed for safe and optimum application. The investigated lithium-ion battery in the present research is a commercially available lithium titanate oxide-based lithium-ion battery, which can be used in different applications. Different experimental facilities were used to measure lithium-ion battery heat generation at different operating conditions and charge and discharge rates in this investigation. Isothermal battery calorimeter is the exclusive calorimeter globally, suitable for lithium-ion batteries’ accurate thermal measurements. Pulse charge and discharge in different increments of state of charge were applied to the lithium titanate oxide-based lithium-ion battery to designate the heat generation of the lithium-ion battery cell. Three different cases were studied. The precise effects of different state-of-charge levels and current-rates on lithium-ion battery total generated heat was investigated. The maximum heat generation during 13 A, 40 A, 50 A, 60 A and 100 A pulse discharges were 0.231 Wh, 0.77 Wh, 0.507 Wh, 0.590 Wh and 1.13 Wh correspondingly. It could be inferred that in the case of periodic charge and discharge pulses applied to the lithium titanate oxide-based lithium-ion battery, important parameters including state of charge, current rates, initial cycling, and temperature have a significant influence on total generated heat.
机译:锂离子电池的热表征对于改善锂离子电池的有效热管理系统至关重要。此外,需要安全和最佳应用。本研究中研究的锂离子电池是市售钛酸锂基锂离子电池,其可用于不同的应用。不同的实验设施用于测量不同操作条件下的锂离子电池发热,并在该研究中进行充电和放电率。等温电池量热计是全球独特的热量表,适用于锂离子电池的准确热测量。以不同的电荷状态增量的脉冲充电和放电被施加到钛酸锂基锂离子电池中以指定锂离子电池电池的发热。研究了三种不同的病例。研究了不同充电水平和电流率对锂离子电池总产生的热量的精确影响。在13a,40a,50a,60a和100期间的最大热产生脉冲放电是0.231wh,0.77wh,0.507wh,0.590wh和1.13wh相应地。可以推断出在施加到钛酸锂的锂离子电池的定期电荷和放电脉冲的情况下,包括充电状态,电流率,初始循环和温度的重要参数对总产生的显着影响。

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