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航空起动/发电机及其内置化技术进展

周洲 刘闯 朱学忠 朱姝姝

周洲, 刘闯, 朱学忠, 等. 航空起动/发电机及其内置化技术进展[J]. 航空动力学报, 2026, 41(10):20250326 doi: 10.13224/j.cnki.jasp.20250326
引用本文: 周洲, 刘闯, 朱学忠, 等. 航空起动/发电机及其内置化技术进展[J]. 航空动力学报, 2026, 41(10):20250326 doi: 10.13224/j.cnki.jasp.20250326
Zhou Zhou, Liu Chuang, Zhu Xuezhong, et al. Recent developments in aircraft starter/generator and its embedding technology[J]. Journal of Aerospace Power, 2026, 41(10):20250326 doi: 10.13224/j.cnki.jasp.20250326
Citation: Zhou Zhou, Liu Chuang, Zhu Xuezhong, et al. Recent developments in aircraft starter/generator and its embedding technology[J]. Journal of Aerospace Power, 2026, 41(10):20250326 doi: 10.13224/j.cnki.jasp.20250326

航空起动/发电机及其内置化技术进展

doi: 10.13224/j.cnki.jasp.20250326
基金项目: 国家自然科学基金面上项目(52277054)
详细信息
    作者简介:

    周洲(1992-),男,博士生,主要从事航空起动/发电系统研究

    通讯作者:

    刘闯(1973-),男,教授、博士生导师,博士,主要从事航空起动/发电系统和航空电源研究。E-mail:lc@nuaa.edu.cn

  • 中图分类号: V245

Recent developments in aircraft starter/generator and its embedding technology

  • 摘要:

    航空起动/发电机是现代多电第二动力系统的关键核心。对起动/发电机的常用发电机类型进行了概述,按起动/发电机是否内置于发动机中进行分类并分别对两大类起动/发电机的发展现状进行简介,讨论了内置式起动/发电机的结构布置方案。综合分析了高效散热技术、轻质高效发电机技术、强容错发电机技术、高温发电机技术、高性能变流技术这五项起动/发电机关键技术。展望了起动/发电机结构集成化、设计协同化、任务多样化的发展趋势。最后指出,各主要类型发电机在起动/发电机应用中均有不可替代的地位,起动/发电机的内置化仍需要在强散热、高功率密度、强容错以及耐高温等自身重要技术指标上取得突破。

     

  • 图 1  F135附件传动机匣及其配套160 kW WFS S/G

    Figure 1.  Accessory gearbox of F135 engine and associated 160 kW WFS S/G

    图 2  各类起动/发电机结构示意图

    Figure 2.  Structural diagram of different starter/generators

    图 3  通用电气公司研制的160 kW WFS S/G[24]

    Figure 3.  160 kW WFS S/G developed by General Electric[24]

    图 4  谢菲尔德大学设计的PMS S/G[29]

    Figure 4.  PMS S/G designed by University of Sheffield[29]

    图 5  45 kW PMS S/G的冷却结构[32]

    Figure 5.  Cooling structure of 45 kW PMS S/G[32]

    图 6  北京航空航天大学设计的PMASynR S/G[34]

    Figure 6.  PMASynR S/G designed by Beihang University[34]

    图 7  汉胜公司与通用电气公司研制的250 kW SR S/G

    Figure 7.  250 kW SR S/G developed by Hamilton Sundstrand and General Electric

    图 8  250 kW SR S/G的冷却结构[39]

    Figure 8.  Cooling structure of 250 kW SR S/G[39]

    图 9  南京航空航天大学与涡轮院合作研制的200 kW SR S/G

    Figure 9.  200 kW SR S/G developed by Nanjing University of Aeronautics and Astronautics and Sichuan Gas Turbine Establishment

    图 10  双转子涡扇发动机的集成发电机结构

    Figure 10.  Structure of embedded generator in two-spool turbofan engine

    图 11  AFRL发动机低压转子轴功率提取试验平台

    Figure 11.  Low-pressure spool power extraction experimental platform in AFRL

    图 12  三转子涡扇发动机的集成发电机结构

    Figure 12.  Structure of embedded generator in three-spool turbofan engine

    图 13  罗罗公司RB211发动机核心机内部温度分布[52]

    Figure 13.  Temperature distribution in core engine of Rolls-Royce RB211 engine[52]

    图 14  APU、IPU的集成发电机结构

    Figure 14.  Structure of embedded generator in APU and IPU

    图 15  AE3007发动机配套的内置式WFSG[53]

    Figure 15.  Embedded WFSG in AE3007 engine[53]

    图 16  通用电气公司针对TF34发动机设计的内置式PMS S/G方案[47]

    Figure 16.  Embedded PMS S/G scheme in TF34 engine designed by General Electric[47]

    图 17  赛峰研制的内置式PMS S/G[23]

    Figure 17.  Embedded PMS S/G developed by Safran[23]

    图 18  F-35 IPP及其内置的PMS S/G[7]

    Figure 18.  Embedded PMS S/G in IPP of F-35 fighter[7]

    图 19  谢菲尔德大学与罗罗公司研制的内置式PMSG[64]

    Figure 19.  Embedded PMSG developed by University of Sheffield and Rolls-Royce[64]

    图 20  通用电气公司针对F110发动机设计的内置式SR S/G方案[48]

    Figure 20.  Embedded SR S/G scheme in F110 engine designed by General Electric[48]

    图 21  汉胜公司研制的IPU[72]

    Figure 21.  IPU developed by Hamilton Sundstrand[72]

    图 22  IPU中SR S/G冷却气流示意图[73]

    Figure 22.  Cooling airflow in SR S/G of IPU[73]

    图 23  霍尼韦尔公司F-16 AFTI IPP[6]

    Figure 23.  IPP in F-16 AFTI developed by Honeywell[6]

    图 24  古德里奇公司研制的FSDG样机[78]

    Figure 24.  FSDG prototype developed by Goodrich[78]

    图 25  谢菲尔德大学设计的内置式SR S/G[52, 74]

    Figure 25.  Embedded SR S/G designed by University of Sheffield[52, 74]

    图 26  谢菲尔德大学设计的内置式SR S/G样机[75]

    Figure 26.  Embedded SR S/G prototype designed by University of Sheffield[75]

    图 27  四川燃气涡轮研究院与南京航空航天大学合作研制的多电涡喷样机

    Figure 27.  More-electric turbojet engine developed by Nanjing University of Aeronautics and Astronautics and Sichuan Gas Turbine Establishment

    图 28  南京航空航天大学与航空工业电源合作研制的内置式SR S/G

    Figure 28.  Embedded SR S/G developed by Nanjing University of Aeronautics and Astronautics and Shanxi Aero Electric Company, Limited

    图 29  南京航空航天大学设计的内置式DSE S/G[79]

    Figure 29.  Embedded DSE S/G designed by Nanjing University of Aeronautics and Astronautics[79]

    图 30  诺丁汉大学设计的内置式PMS S/G[62]

    Figure 30.  Embedded PMS S/G designed by Nottingham University[62]

    图 31  诺丁汉大学设计的电滑行驱动电动机[85]

    Figure 31.  Electric taxiing drive designed by Nottingham University[85]

    图 32  机壳循油和定子浸油冷却方案示意图

    Figure 32.  Schematic diagram of oil-jacket and oil-immersed cooling

    图 33  汉胜250 kW SR S/G中的空心导体绕组[39]

    Figure 33.  Winding with hollow conductor in 250 kW SR S/G developed by Hamilton Sundstrand[39]

    图 34  机壳喷油和空心轴喷油示意图

    Figure 34.  Schematic diagram of stator spray cooling and rotor spray cooling with hollow shaft

    图 35  麻省理工学院设计的电动机定子散热器[105]

    Figure 35.  Electric motor stator cooling designed by Massachusetts Institute of Technology[105]

    图 36  纽卡斯尔大学设计的槽内导热块[110]

    Figure 36.  In-slot heat guide designed by Newcastle University[110]

    图 37  马凯特大学设计的增材制造绕组结构及其冷却方案[112]

    Figure 37.  Structure and cooling schematic of winding manufactured by additive manufacturing in Marquette University[112]

    图 38  预压制铝绕组外形及截面[115]

    Figure 38.  Shape and section view of pre-compressed aluminum winding[115]

    图 39  具有方形外廓的利兹线

    Figure 39.  Litz wire with rectangular profile

    图 40  不同的永磁体堆叠结构[99, 120]

    Figure 40.  Different magnet segmentation structure[99, 120]

    图 41  谢菲尔德大学设计的可动极靴[30]

    Figure 41.  Movable pole shoe designed by University of Sheffield[30]

    图 42  三通道三相分布绕组结构[23]

    Figure 42.  Three-phase distributed winding with three-channel structure[23]

    图 43  绕组绝缘材料耐温性能测试[129]

    Figure 43.  High-temperature tolerance test of different insulation materials[129]

    图 44  常用功率变换器拓扑

    Figure 44.  Common power converter topologies

    图 45  三电平功率变换器拓扑

    Figure 45.  Three-level power converter topologies

    图 46  高功率密度PCB嵌入式功率模块[157]

    Figure 46.  High-power-density PCB embedded power module[157]

    图 47  通用电气公司的双面冷却功率模块[147, 151]

    Figure 47.  Double-sided cooling power module Developed by General Electric[147, 151]

    表  1  主流航空起动/发电机类型对比

    Table  1.   Comparison of common aircraft starter/generators

    起动/发电机类型 优势 劣势
    WFS S/G · 调压控制简单,仅需小容量功率变换器进行直流励磁调节;
    · 发电运行时无需转子位置信号;
    · 技术成熟度高。
    · 转子结构复杂且发热量大,需要复杂的转子
    冷却结构,难以用于高温、高速应用;
    · WFS S/G的起动控制需要转子位置信号、特殊的
    交流励磁方案和大容量起动逆变器;
    · 大感值励磁绕组不利于提高负载响应速度。
    PMS S/G · 功率密度高;
    · SmCo永磁体和合金护套增强转子
    耐高温能力(300~350℃);
    · 永磁体损耗较易抑制,转子损耗低;
    · 易于实现长气隙设计,允许加厚护套
    从而适应高速运行;
    · 起动功能易于集成。
    · 励磁磁势固定,需要大容量功率变换器或额外的
    定子绕组进行调压;
    · 必需特别的手段来应对绕组部分或整体短路故障;
    · 系统运行依赖于转子位置信号;
    · 合金护套损耗需要关注,复合纤维护套损耗低
    但耐温能力差(<200℃);
    · 永磁体工作点须综合温度和过载进行校核。
    SR S/G · 转子结构最简单,易于实现高速运行,具备最强高温适应性;
    · 定子集中绕组,结合特有功率变换器
    从而具备强容错能力;
    · 起动功能易于集成。
    · 转矩脉动大;
    · 转子的铁芯损耗和风阻损耗较大;
    · 性能对气隙长度敏感;
    · 系统运行依赖于转子位置信号;
    · 脉冲相电流决定系统必需高电流容量器件和
    大容量母线电容。
    下载: 导出CSV

    表  2  外置式起动/发电机汇总

    Table  2.   Summary of external starter/generators

    类型 研制方 功率 转速/(r/min) 质量/kg 冷却方式 参考文献
    WFS S/G 汉胜 250 kVA 16000 92 机壳循油、
    空心轴喷油
    [5]
    225 kVA 55.7
    霍尼韦尔 150 kVA
    柯林斯 225 kVA 14000 [22]
    赛峰 200 kVA 16000 90 [23]
    汉胜 160 kW [7]
    通用电气 160 kW 32490 机壳、转子循油 [24]
    南京航空航天大学 120 kW 8000 52 自通风 [25]
    PMS S/G 通用电气 150 kVA 21000 机壳循油后喷油 [26]
    60 kVA 30000 27.9 机壳、空心轴循油 [27]
    40 kVA 26250 17.9、9.1^ [28]
    谢菲尔德大学 100 kW 26584 22.8、12.2^ 定子浸油、转子强迫通风 [29-30]
    诺丁汉大学 45 kW 32000 定子浸油 [31-32]
    250 kW 24000 56.7^ [33]
    PMASynR S/G 北京航空航天大学 45 kW 24000 13 机壳循油后喷油、端盖喷油 [34-35]
    SR S/G 汉胜 250 kW 25558 59.4、38.9^ 机壳、空心绕组、转子循油 [36-39]
    南京航空航天大学 200 kW 20700 机壳循油、壳体内强迫通风
    华中科技大学 150 kW 20000 机壳、转子循油 [40-41]
    下载: 导出CSV

    表  3  内置式起动/发电机、发电机汇总

    Table  3.   Summary of embedded starter/generators and generators

    类型 研制方 功率 转速/(r/min) 质量/kg 冷却方式 参考文献
    WFSG 普惠 30 kVA 11100 24.4 空心轴喷油 [56]
    赛峰 75 kVA 8200 机壳、转子循油 [53, 57-58]
    PMS S/G 通用电气 120 kVA* 17600 34^ 机壳循油、转子油雾冷却 [47]
    普惠 31000 [59]
    赛峰 150 kW+ 15000 88^ 定子浸油、空心轴循油 [23]
    罗罗 51000 强迫通风 [60]
    霍尼韦尔 80 kW 59000 滑油冷却 [7, 61]
    赛峰 50 kW 56000 19 强迫通风 [23]
    诺丁汉大学 20 kW 14200 2.8^ 定子浸燃油 [62]
    PMSG 罗罗 250 kW 3100 183^ 强迫通风 [49, 63-65]
    乌法国立航空大学 120 kW 60000 28 强迫通风 [66]
    SR S/G 通用电气 32 kW 48000 机壳、空心轴循油、
    定子槽内管路循油
    [67-68]
    汉胜 30 kW 46850 7.7^ 机壳、空心轴循油 [69]
    通用电气 375 kW* 15460 33.6^ 机壳、空心绕组、空心轴循油 [48, 70]
    霍尼韦尔 125 kW* 60000 强迫通风 [54, 71]
    汉胜 125 kW 60000 自通风 [72-73]
    霍尼韦尔 15 kW 60950 强迫通风 [6]
    谢菲尔德大学 100 kW+ 13500 强迫通风 [52, 74]
    15 kW+ 30000 11.3^ [75]
    柏林工业大学 30 kW 50000 定子循水(样机) [76]
    南京航空航天大学 6 kW 40000 强迫通风
    125 kW 46000 机壳循油、空心轴喷油
    西北工业大学 3 kW+ [77]
    SRG 赛峰 150 kW 10000 105 机壳、空心轴循油 [78]
    DSE S/G 南京航空航天大学 100 kW 63000 42 机壳循油、空心轴喷油 [16, 79]
    27 kW 24000 自通风 [80]
    150 kW 13000 105.6、47.8^ 机壳循油、转子强迫通风 [17]
    12 kW+ 15000 [81]
    下载: 导出CSV
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  • 收稿日期:  2025-07-13
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