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Thermal Behavior of Small Lithium-Ion Secondary Battery During Rapid Charge and Discharge Cycles

机译:小型锂离子二次电池在快速充放电循环中的热行为

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The secondary batteries for an electric vehicle (EV) generate much heat during rapid charge and discharge cycles above the rated condition, when the EV starts quickly consuming the battery power and stops suddenly recovering the inertia energy. During rapid charge and discharge cycles, the cell temperature rises significantly and may exceed the allowable temperature. We calculated the temperature rise of a small lithium-ion secondary battery during rapid charge and discharge cycles using our battery thermal behavior model, and confirmed its validity during discharge cycle at current smaller than the discharge rate of 1C. The heat source factors were measured by the methods described in our previous study, because the present batteries have been improved in their performance and have low overpotential resistance. The battery heat capacity was measured by a twin-type heat conduction calorimeter, and determined to be a linear function of temperature. Further, the heat transfer coefficient was measured again precisely by the method described in our previous study, and was arranged as a function of cell and ambient temperatures. The calculated temperature by our battery thermal behavior model using these measured data agrees well with the cell temperature measured by thermocouple. Therefore, we can confirm the validity of this model again during rapid charge and discharge cycles.
机译:电动汽车(EV)的二次电池会在高于额定条件的快速充电和放电循环中产生大量热量,这时EV开始迅速消耗电池电量并突然停止回收惯性能量。在快速充电和放电周期中,电池温度会明显升高,并可能超过允许温度。我们使用电池热行为模型计算了小型锂离子二次电池在快速充电和放电循环期间的温升,并确认了在小于1C放电速率的电流下在放电循环中的有效性。通过现有研究中描述的方法来测量热源因素,因为目前的电池性能得到了改善,并且过电位电阻较低。电池的热容量通过双型导热量热计测量,并确定为温度的线性函数。此外,通过我们先前的研究中描述的方法再次精确地测量了传热系数,并将其作为电池和环境温度的函数进行排列。使用这些测量数据,由我们的电池热行为模型计算出的温度与通过热电偶测量的电池温度非常吻合。因此,我们可以在快速充放电循环中再次确认该模型的有效性。

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