有源细胞平衡结构的最优尺寸

Swaminathan Narayanaswamy, S. Steinhorst, M. Lukasiewycz, M. Kauer, S. Chakraborty
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引用次数: 20

摘要

本文提出了一种优化有源电池平衡架构尺寸的方法,这在电动汽车(ev)或固定应用(如智能电网)的电能存储(EESs)中越来越重要。主动电池平衡通过电荷转移平衡电池组内电池的电荷状态,增加有效容量和使用寿命。虽然优化方法已经被引入到EESs的几个方面的设计过程中,但到目前为止,主动单元平衡架构还没有在其组件方面进行系统优化。因此,本文分析了现有的架构,以制定能耗、安装体积和平衡电流的设计指标。基于这些设计指标,本文提出了一种在不同平衡电流下有效获得各种电感和晶体管的帕累托最优配置的方法。然后将我们的方法应用于案例研究,使用现实的平衡算法优化两个最先进的架构。结果证明了系统优化在电池平衡领域的适用性,可以在最小化安装空间的情况下实现更高的能源效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal dimensioning of active cell balancing architectures
This paper presents an approach to optimal dimensioning of active cell balancing architectures, which are of increasing relevance in Electrical Energy Storages (EESs) for Electric Vehicles (EVs) or stationary applications such as smart grids. Active cell balancing equalizes the state of charge of cells within a battery pack via charge transfers, increasing the effective capacity and lifetime. While optimization approaches have been introduced into the design process of several aspects of EESs, active cell balancing architectures have, until now, not been systematically optimized in terms of their components. Therefore, this paper analyzes existing architectures to develop design metrics for energy dissipation, installation volume, and balancing current. Based on these design metrics, a methodology to efficiently obtain Pareto-optimal configurations for a wide range of inductors and transistors at different balancing currents is developed. Our methodology is then applied to a case study, optimizing two state-of-the-art architectures using realistic balancing algorithms. The results give evidence of the applicability of systematic optimization in the domain of cell balancing, leading to higher energy efficiencies with minimized installation space.
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