适航性
计算机科学
航空电子设备
模块化设计
可靠性工程
可靠性(半导体)
控制工程
分布式发电
互操作性
电力系统
分布式计算
模块化(生物学)
航空航天
混合动力系统
控制(管理)
系统工程
调度(生产过程)
综合模块化航空电子设备
工程类
仿真
新闻聚合器
控制器(灌溉)
地铁列车时刻表
桥(图论)
分布式电源
微电网
故障检测与隔离
功率(物理)
能源供应
软件部署
控制重构
电力
控制系统
动态需求
灵活性(工程)
领域(数学分析)
桥接(联网)
能源管理
混合动力
异步通信
作者
Guihua Liu,Ye Tao,Xinyu Wang,Kun Liu
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2026-02-13
卷期号:19 (4): 997-997
摘要
The evolution of Hybrid Power Supply Systems (HPSSs) has extended from ground-based microgrids to the safety-critical domain of More Electric Aircraft (MEA). This paper presents a comprehensive review of dynamic power allocation strategies, bridging the gap between mature ground-based control theories and the stringent operational requirements of aerospace systems. Strategies are systematically classified into centralized, decentralized, and distributed architectures based on control structures. Evaluations indicate that centralized strategies, while effective in microgrids, achieve global optimality but face reliability constraints in airborne environments. In contrast, decentralized strategies based on virtual impedance ensure the high reliability and “plug-and-play” modularity essential for avionics yet often yield suboptimal coordination. Consequently, distributed cooperative control is identified as the most promising paradigm to bridge this gap, synthesizing optimization with fault tolerance. Finally, critical challenges in adapting these technologies to aviation—spanning algorithmic determinism and airworthiness certification—are discussed, and future trends in hybrid intelligence and digital twin-based verification are outlined for next-generation airborne energy systems.
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