Bidirectional Constant Current String-To-Cell Battery Equalizer Based on L2C3 Resonant Topology
Research output: Journal Publications and Reviews (RGC: 21, 22, 62) › 21_Publication in refereed journal › peer-review
Author(s)
Related Research Unit(s)
Detail(s)
Original language | English |
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Pages (from-to) | 666-677 |
Journal / Publication | IEEE Transactions on Power Electronics |
Volume | 38 |
Issue number | 1 |
Online published | 9 Sep 2022 |
Publication status | Published - Jan 2023 |
Link(s)
Abstract
In battery equalization systems, equalization speed, control complexity, and length of energy flow path are the important figures of merits. This article presents a novel bidirectional L2C3 resonant converter in a unique equalizer architecture with constant balancing current and fixed frequency control. The constant balancing current can be customized to achieve a stable balancing speed. The common equalizer unit transfers power bidirectionally between the entire string and any single cell. Design considerations of L2C3-based bidirectional equalizer are analyzed in detail, which ensures zero-voltage switching among all mosfets during the equalization process. The circuit is designed with synchronous rectification using the first harmonics approximation. The key contributions of this article include: A new bidirectional resonant topology for battery equalization; bidirectional constant current balancing with open-loop control; simplified synchronous rectification. An equalizer prototype with four lithium-ion battery cells at a balancing current of 500 mA is built and tested. The L2C3 circuit operates at 200 kHz with a peak efficiency of 89.4% and 90.1% under two balancing modes. Experimental results show the proposed scheme exhibits outstanding balancing performance.
Research Area(s)
- Battery equalizers, Battery management system (BMS), Electric vehicles (EVs), L2C3 converter, Zero-voltage switching (ZVS)
Citation Format(s)
Bidirectional Constant Current String-To-Cell Battery Equalizer Based on L2C3 Resonant Topology. / Wei, Zhengqi; Wang, Haoyu; Lu, Yiqing et al.
In: IEEE Transactions on Power Electronics, Vol. 38, No. 1, 01.2023, p. 666-677.Research output: Journal Publications and Reviews (RGC: 21, 22, 62) › 21_Publication in refereed journal › peer-review