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储能系统技术 储能系统 下垂控制 可靠性分析 ★ 4.0

基于模糊下垂控制的航空电池组动态功率平衡方法

A Dynamic Power Balancing Method for Aircraft Battery Packs Based on Fuzzy Droop Control

作者 Yun Zhang · Shihong Jing · Yihang Wei · Tong Li · Zhen Huang
期刊 IEEE Journal of Emerging and Selected Topics in Power Electronics
出版日期 2024年12月
技术分类 储能系统技术
技术标签 储能系统 下垂控制 可靠性分析
相关度评分 ★★★★ 4.0 / 5.0
关键词 电动飞机 电池组平衡 动态功率平衡方法 模糊逻辑控制 可靠性
语言:

中文摘要

电动飞机是未来发展趋势,但电池性能限制了电动飞机应用。分布式电池组平衡对电动飞机安全有重大影响。提出一种基于模糊逻辑控制和优化可变参数下垂控制的电池组源-负载分离动态功率平衡方法。通过定义源和负载准则设置启停平衡条件,该方法实现更快平衡速度,同时实现电池组间更小能量传输。动态变化的平衡电流防止实现平衡前大电流充电,降低充电期间热应力并减少电池退化。该方法在更少模式下实现飞机电力系统能量平衡,最小化平衡模式间频繁切换。还消除传统下垂控制在电池平衡系统中引起的电压偏差,增强供电可靠性。建立包含四组48V电池组的实验平台验证所提控制方法。与传统方法对比实验表明所提方法具有更快动态平衡速度、更灵活模式转换且直流母线电压无偏差。

English Abstract

Electric aircraft is a future development trend, but the performance of batteries restricts the application of electric aircraft. The balance of distributed battery packs has a significant impact on the safety of electric aircraft. This article proposes a dynamic power balancing method for source-load separation between battery packs, which is based on fuzzy logic control and optimized droop control with variable parameters. By defining the criteria for “sources” and “loads” setting the start and stop balancing conditions, this method enables faster balancing speeds, while achieving smaller energy transfer between battery groups. The dynamically varying balancing current prevents high current charging before achieving balance, reducing thermal stress during charging and decreasing battery degradation. Additionally, this method enables energy balancing in the aircraft power system under fewer modes, minimizing frequent transitions between balancing modes. It also eliminates the voltage deviation caused by traditional droop control in the battery balancing system, enhancing the reliability of power supply. An experimental platform including four groups of 48-V battery packs is built to validate the proposed control method. After comparative experiments with traditional methods, it shows that the proposed method has faster dynamic balancing speed, more flexible mode conversion, and no deviation in dc bus voltage.
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SunView 深度解读

该航空电池组平衡研究对阳光电源储能系统管理有重要参考价值。模糊下垂控制和源-负载分离的动态平衡策略可应用于阳光PowerTitan储能系统的多电池簇并联管理,提高平衡效率和降低热应力。动态变化平衡电流减少电池退化和消除直流母线电压偏差的技术可提升阳光ST系列储能变流器的可靠性和电池寿命。更少模式切换和更快平衡速度的性能优势符合阳光电源储能系统的高效管理需求。该研究对阳光电源优化大容量储能系统架构和电池管理策略有实用价值。