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首页> 外文期刊>Journal of power sources >Constant-current regulator-based battery-supercapacitor hybrid architecture for high-rate pulsed load applications
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Constant-current regulator-based battery-supercapacitor hybrid architecture for high-rate pulsed load applications

机译:基于恒流稳压器的电池-超级电容器混合架构,适用于高速率脉冲负载应用

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摘要

Modern batteries provide high discharging efficiency, but the rate capacity effect in these batteries drastically decreases the discharging efficiency as the load current increases. Electric double layer capac-itors, or simply supercapacitors, have extremely low internal resistance, and a battery-supercapacitor hybrid may mitigate the rate capacity effect for high pulsed discharging current. However, a hybrid architecture comprising a simple parallel connection does not perform well when the supercapaci-tor capacity is small, which is a typical situation because of the low energy density and high cost of supercapacitors. This paper presents a new battery-supercapacitor hybrid system that employs a constant-current reg-ulator isolating the battery from supercapacitor to improve the end-to-end efficiency from the battery to the load while accounting for the rate capacity effect for the Li-ion batteries and the conversion effi-ciency data for the regulator. We optimize the system in terms of a delivered energy density which is an end-to-end energy delivery per unit volume of the energy storage elements. We evaluate the delivered energy density with the aid of detailed simulations and develop a design space exploration algorithm based on the characteristics of the proposed architecture. We achieve 7.7% improvement in deliverable energy density over conventional parallel connection of battery and supercapacitor.
机译:现代电池提供了高放电效率,但是这些电池的倍率容量效应随着负载电流的增加而大大降低了放电效率。双电层电容器或简称超级电容器具有极低的内部电阻,而电池-超级电容器混合可减轻高脉冲放电电流的倍率容量效应。然而,当超级电容器容量较小时,包括简单并联连接的混合架构不能很好地执行,这是典型的情况,这是因为低能量密度和超级电容器的高成本。本文提出了一种新的电池-超级电容器混合系统,该系统采用恒流稳压器将电池与超级电容器隔离,以提高从电池到负载的端到端效率,同时考虑了锂电池的倍率容量效应。离子电池和调节器的转换效率数据。我们根据传递的能量密度优化系统,传递的能量密度是每单位体积储能元件的端到端能量传递。我们借助详细的仿真评估传递的能量密度,并根据所提出架构的特征开发一种设计空间探索算法。与传统的电池和超级电容器并联连接相比,我们的可传递能量密度提高了7.7%。

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