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航空发动机转子盲腔螺栓拧紧技术研究进展

李兆宇 李小强 张鹏飞 薛立仲 张宗江 赵罡

李兆宇, 李小强, 张鹏飞, 等. 航空发动机转子盲腔螺栓拧紧技术研究进展[J]. 航空动力学报, 2026, 42(X):20250177 doi: 10.13224/j.cnki.jasp.20250177
引用本文: 李兆宇, 李小强, 张鹏飞, 等. 航空发动机转子盲腔螺栓拧紧技术研究进展[J]. 航空动力学报, 2026, 42(X):20250177 doi: 10.13224/j.cnki.jasp.20250177
Li Zhaoyu, Li Xiaoqiang, Zhang Pengfei, et al. Research progress of blind cavity bolt tightening technology for aeroengine rotors[J]. Journal of Aerospace Power, 2026, 42(X):20250177 doi: 10.13224/j.cnki.jasp.20250177
Citation: Li Zhaoyu, Li Xiaoqiang, Zhang Pengfei, et al. Research progress of blind cavity bolt tightening technology for aeroengine rotors[J]. Journal of Aerospace Power, 2026, 42(X):20250177 doi: 10.13224/j.cnki.jasp.20250177

航空发动机转子盲腔螺栓拧紧技术研究进展

doi: 10.13224/j.cnki.jasp.20250177
基金项目: 国家科技重大专项(J2022-Ⅶ-0001-0043); 冗余自由度工业机器人项目(2024ZY01050)
详细信息
    作者简介:

    李兆宇(1993-),男,博士生,主要从事航空制造工艺与装备方面的研究。E-mail:lzy24@buaa.edu.cn

    通讯作者:

    张鹏飞(1990-),男,助理研究员,博士,主要从事智能装配与机器视觉技术方面的研究。E-mail:ftd423@buaa.edu.cn

  • 中图分类号: V229+.1

Research progress of blind cavity bolt tightening technology for aeroengine rotors

  • 摘要:

    综述了航空发动机转子盲腔螺栓拧紧技术的研究现状。以转子盲腔螺栓拧紧的技术需求为牵引,从拧紧工艺、拧紧装备以及拧紧检测3个方面展开论述。首先,围绕转子止口配合和螺栓连接两个阶段总结了止口压装工艺、力矩转角法和多轴拧紧法等优化工艺;其次,围绕装备构型设计和精度控制方法两个方面,总结了拧紧装备的力矩传递方式、机构展开方式、整体构型发展以及螺栓定位和拧紧精度控制方法等研究成果;最后,围绕螺栓拧紧的检测方法,总结了当前拧紧力矩、转角和预紧力的检测技术。研究结果表明:为彻底突破转子盲腔狭小空间的限制,提升转子装配质量,盲腔螺栓拧紧技术将向着压装-拧紧-测量一体化、机器人智能拧紧以及多模态融合测量的方向发展。

     

  • 图 1  转子盲腔结构及螺栓拧紧方式

    Figure 1.  Rotor blind cavity structure and bolt tightening method

    图 2  转子热装过程中的止口配合

    Figure 2.  Rabbet fit during rotor hot assembly

    图 3  压装工艺机理分析[8]

    Figure 3.  Analysis of the mechanism of press-fit process[8]

    图 4  国内外压装设备[12-15]

    Figure 4.  Press-fit equipment at home and abroad[12-15]

    图 5  预紧力-转角关系

    Figure 5.  Relationship of the preload and angle

    图 6  力矩法和力矩转角法的试验研究[21]

    Figure 6.  Experimental study on torque method and torque-angle method[21]

    图 7  力矩转角法的应用[24]

    Figure 7.  Application of torque angle method[24]

    图 8  螺栓弹性相互作用示意图

    Figure 8.  Schematic diagram of bolt elastic interaction

    图 9  多轴拧紧仿真分析结果[29]

    Figure 9.  Multi-axis tightening simulation analysis results[29]

    图 10  多轴拧紧设备研究[32]

    Figure 10.  Research on multi-axis tightening equipment[32]

    图 11  力矩传递方式[33-36]

    Figure 11.  Torque transmission method[33-36]

    图 12  展开结构示意图[33, 38-39]

    Figure 12.  Unfolding structure diagram[33, 38-39]

    图 13  盲腔螺栓拧紧装备发展趋势

    Figure 13.  Development trend of bolt tightening equipment for blind cavity

    图 14  盲腔拧紧装备中的内外对应定位方式[49]

    Figure 14.  Internal and external corresponding positioning method in blind cavity tightening equipment[49]

    图 15  视觉识别定位方式[51]

    Figure 15.  Visual recognition positioning method[51]

    图 16  校准法示意图

    Figure 16.  Schematic diagram of calibration method

    图 17  闭环控制方法示意图

    Figure 17.  Schematic diagram of closed loop control method

    图 18  基于图像视觉的转角检测方法[58]

    Figure 18.  Angle measurement method based on image vision[58].

    图 19  基于射频识别技术的转角检测方法[60]

    Figure 19.  Angle measurement method based on radio frequency identification technology[60]

    图 20  超声测量法的应用[70]

    Figure 20.  Application of ultrasonic measurement method[70]

    表  1  不同力矩传递方式比较

    Table  1.   Comparison of different torque transfer methods

    力矩传递方式优点缺点应用工况
    齿轮传动拧紧效率高刚度不足小力矩螺栓拧紧
    整体摆动结构刚度高拧紧效率低大力矩螺栓拧紧
    软轴传动传递精度高刚度不足小力矩螺栓拧紧
    万向节传动传递精度高结构复杂大力矩螺栓拧紧
    下载: 导出CSV

    表  2  不同拧紧机构展开方式比较

    展开方式 优点 缺点 应用场景
    蜗轮蜗杆结构 传动平稳 加工精度
    要求高
    小盘径比盲腔结构
    连杆结构 结构紧凑 装配困难 小盘径比盲腔结构
    滑轨结构 运动精度高 占据空间较大 小盘径比盲腔结构
    齿轮结构 可达性高 运动精度控制难度大 大盘径比盲腔结构
    下载: 导出CSV

    表  3  力矩检测方法总结

    Table  3.   Summary of torque measurement methods

    力矩检测方法具体分类测量原理信号传递方式
    应变式碳刷式力矩传感器应变电桥电阻转化为电压信号接触式
    电磁感应式力矩传感器线圈电磁感应转化为电信号非接触式
    无线传输式力矩传感器无线信号发射接收单元实现信号传递非接触式
    转角式电磁式传感器线圈电磁感应转化为电信号非接触式
    光电测量原理光敏元件感应电信号非接触式
    下载: 导出CSV

    表  4  非接触式力矩传感器的主要研究方向

    Table  4.   Main research directions of non-contact torque sensors

    研究方向特点测量精度响应速度传感器体积成熟度
    无线信号传输模块利用物理场穿透性传递信号较高较快成熟
    特殊力矩敏感材料利用材料物理特性传递信号较小不成熟
    下载: 导出CSV

    表  5  螺栓预紧力先进检测方法总结

    Table  5.   Summary of advanced measurement methods for bolt preload

    测量方法测量原理应用条件
    超声测量声弹性效应在螺栓上安装超声波发射接收器
    压电主动式测量压电效应在被连接件表面安装压电片
    电阻应变测量应变-电阻效应在螺栓内部安装MEMS传感器或螺栓表面安装电阻应变片
    光纤光栅测量光纤光栅布拉格效应在螺栓内部、螺栓表面或垫片内部安装FBG传感器
    下载: 导出CSV
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  • 收稿日期:  2025-04-14
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