混合储能系统中电荷迁移效率优化

Yanzhi Wang, Younghyun Kim, Q. Xie, N. Chang, Massoud Pedram
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引用次数: 59

摘要

电能是一种高质量的能量形式,因此将多余的电能存储在电能存储系统中而不是转换成其他类型的能量是有益的。像存储设备一样,没有一种类型的EES元件可以满足所有期望的要求。尽管对新的EES技术进行了积极的研究,但在不久的将来不太可能有最终的高效率、高功率/能量容量、低成本和长循环寿命的EES元件。我们提出了一个由两个或多个异构EES元素组成的HEES系统,从而实现每个EES元素的优势,同时隐藏其弱点。HEES管理问题可分为:不同银行的EES元之间的电荷分配、不同银行的EES元之间的电荷置换(即放电)以及从一个银行到另一个EES元之间的电荷迁移。尽管有最优的电荷分配和替换,但电荷迁移是提高EES系统效率的必要条件。本文是第一个正式描述电荷迁移效率及其优化的论文。我们首先定义了电荷迁移体系结构和相应的电荷迁移问题。考虑到充电器和电源转换器的效率、存储元件的倍率容量效应、存储元件的终端电压变化作为荷电状态(SoC)的函数等因素,我们提供了一个系统的单源单目标电荷迁移解决方案。由电池组和超级电容器组成的HEES系统的实验结果表明,超级电容器到电池和超级电容器到超级电容器的电荷迁移效率提高了51.3%。
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Charge migration efficiency optimization in hybrid electrical energy storage (HEES) systems
Electrical energy is high-quality form of energy, and thus it is beneficial to store the excessive electric energy in the electrical energy storage (EES) rather than converting into a different type of energy. Like memory devices, no single type of EES element can fulfill all the desirable requirements. Despite active research on the new EES technologies, it is not likely to have an ultimate high-efficiency, high-power/energy capacity, low-cost, and long-cycle life EES element in the near future. We propose an HEES system that consists of two or more heterogeneous EES elements, thereby realizing the advantages of each EES element while hiding their weaknesses. The HEES management problems can be broken into charge allocation into different banks of EES elements, charge replacement (i.e., discharge) from different banks of EES elements, and charge migration from one bank to another bank of EES elements. In spite of the optimal charge allocation and replacement, charge migration is mandatory to leverage the EES system efficiency. This paper is the first paper that formally describes the charge migration efficiency and its optimization. We first define the charge migration architecture and the corresponding charge migration problem. We provide a systematic solution for a single source and single destination charge migration considering the efficiency of the charger and power converter, the rate capacity effect of the storage element, the terminal voltage variation of the storage element as a function of the state of charge (SoC), and so on. Experimental results for an HEES system comprising of banks of batteries and supercapacitors demonstrate a migration efficiency improvement up to 51.3%, for supercapacitor to battery and supercapacitor to supercapacitor charge migration.
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