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Single-Source, Single-Destination Charge Migration in Hybrid Electrical Energy Storage Systems

机译:混合电能存储系统中的单源单目的地电荷迁移

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In spite of extensive research it is still quite expensive to store electrical energy without converting it to a different form of energy. As of today, no single type of electrical energy storage (EES) element can fulfill all the desirable features of an ideal storage device, e.g., high-efficiency, high-power/energy capacity, low-cost, and long-cycle life. A hybrid EES system (HEES) consists of two or more heterogeneous EES elements, realizing the advantages of each EES element while hiding their weaknesses. HEES systems exhibit superior performance compared with homogeneous EES systems when appropriate charge allocation and replacement policies are developed and used. In addition, charge migration is mandatory because the optimal EES banks for charge allocation and replacement are in general different, and each EES bank has limited storage capacity. This paper formally describes the notion of charge migration efficiency and its optimization. We first define the charge migration architecture and the corresponding charge migration optimization problem. We provide a systematic solution for the single-source, single-destination charge migration problem considering the efficiency variation of the converters, the rate capacity and internal power loss of the storage element, the terminal voltage variation of the storage elements as a function of their state of charge, and so on. We also introduce the optimal solutions for both the time-constrained and -unconstrained versions of the charge migration problem formulations. Experimental results demonstrate significant charge migration efficiency improvement of up to 83.4%.
机译:尽管进行了广泛的研究,但存储电能而不将其转换为其他形式的能量仍然非常昂贵。迄今为止,没有一种类型的电能存储(EES)元件可以满足理想存储设备的所有所需功能,例如,高效率,高功率/能量容量,低成本和长寿命。混合EES系统(HEES)由两个或多个异构EES元素组成,在隐藏每个EES元素的弱点的同时实现了它们的优点。当制定和使用适当的费用分配和更换政策时,HEES系统与同类EES系统相比具有优越的性能。另外,电荷迁移是强制性的,因为用于电荷分配和替换的最佳EES库通常有所不同,并且每个EES库的存储容量都有限。本文正式描述了电荷迁移效率及其优化的概念。我们首先定义电荷迁移体系结构和相应的电荷迁移优化问题。考虑到转换器的效率变化,存储元件的速率容量和内部功率损耗,存储元件的端电压变化作为它们的函数,我们为单源,单目的地电荷迁移问题提供了系统的解决方案充电状态等。我们还针对电荷迁移问题公式的时间约束和非约束版本引入了最佳解决方案。实验结果表明,电荷迁移效率显着提高了83.4%。

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