推进
工程类
电力航天器推进
动力传输
汽车工程
超导电机
电力
电力系统
功率(物理)
航空
电气工程
航空航天工程
发电
船舶推进
机械工程
可再生能源
电力传输
水冷
系统工程
组分(热力学)
传输(电信)
传动系
涡轮机
电力电子
断层(地质)
混合动力汽车
燃气轮机
重点(电信)
作者
Zibing Qu,Mingliang Bai,Wenjiang Yang,Juzhuang Yan
出处
期刊:
日期:2026-05-29
卷期号:2 (1)
标识
DOI:10.1007/s44270-025-00026-6
摘要
Abstract Achieving sustainable aviation requires high-power, high-efficiency, and lightweight electric propulsion systems, with superconducting technology showing great potential for significantly enhancing electrical component performance. This paper presents a comprehensive review of megawatt-class superconducting propulsion architectures for aircraft, highlighting their principles, benefits, limitations, and technology readiness levels. A comprehensive analysis is provided on four critical aspects of superconducting power transmission and distribution—superconducting cables, cryogenic power electronics, superconducting fault current limiters, and superconducting magnetic energy storage—with an emphasis on their developmental progress, technical barriers, and future prospects. A comparative assessment of prospective architectures toward 2035 is conducted under three scenarios: conservative, baseline, and optimistic. Findings suggest that for a 5 MW regional aircraft utilizing hydrogen fuel cells, superconducting hybrid-electric propulsion can significantly reduce system weight and enhance power density. For a 10 MW single-aisle aircraft with turbine engines, a parallel hybrid configuration offers superior efficiency and density. Considering the system-control complexities associated with mechanical coupling, the DC transmission series turbo-electric hybrid propulsion system is identified as a particularly promising pathway, aligning with the anticipated trajectory of high-power aviation systems.
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