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Discharge of electrochemical energy storage devices at elevated rates for driving pulsed power applications

机译:电化学储能设备以较高的速率放电,以驱动脉冲功率应用

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Over the last several decades a number of electrochemical energy storage devices have been developed for use in portable applications. Traditionally devices such as lithium-ion batteries are very energy dense but only modestly power dense limiting their use in pulsed power applications. Recently however, new specialty lithium-ion battery technologies have been developed, such as those used in the Saft VL5U cell, with power densities as high as 28.5 kW/kg [1]. With these power densities, they are much more suitable for driving pulsed power applications than ever before. Additionally, advanced hybrid capacitors such as electric double layer capacitors and lithium-ion capacitors have been developed with high energy and power densities making them also suitable for use in pulsed power experiments. Previously, research using these types of devices in applications other than as storage in hybrid electric vehicles and renewable energy platforms has been limited. The University of Texas at Arlington is currently engaged in research to understand the limitations of these types of devices for use in pulsed high current experiments. A test stand, similar to that of Chen et. al [2], has been developed and used to further characterize the performance of these types of devices when they are discharged at rates several hundred times their rated C values. This paper describes the rationale behind the experiments, the experimental setup developed, and the research progress made thus far.
机译:在过去的几十年中,已经开发出了许多用于便携式应用的电化学能量存储装置。传统上,诸如锂离子电池之类的设备能量密度很高,但功率密度却很小,从而限制了它们在脉冲功率应用中的使用。然而,最近,已经开发了新的特殊锂离子电池技术,例如用于Saft VL5U电池的那些技术,其功率密度高达28.5 kW / kg [1]。有了这些功率密度,它们比以往更适合于驱动脉冲功率应用。另外,已经开发出具有高能量和功率密度的先进的混合电容器,例如双电层电容器和锂离子电容器,使其也适用于脉冲功率实验。以前,在混合动力汽车和可再生能源平台中的存储以外的应用中使用这些类型的设备的研究一直受到限制。德克萨斯大学阿灵顿分校目前正在进行研究,以了解这些类型的设备在脉冲大电流实验中的局限性。类似于Chen等人的试验台。等人[2]已经被开发出来,并用来进一步表征这些类型的设备在以其额定C值的几百倍的速率放电时的性能。本文介绍了实验背后的原理,开发的实验装置以及迄今为止的研究进展。

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