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边界规避-追踪任务飞行员诱发振荡的触发与检测

夏秋阳 刘猛 吴豪 王中山 赵瑞凯 朱克勇

夏秋阳,刘猛,吴豪,等. 边界规避-追踪任务飞行员诱发振荡的触发与检测[J]. 北京航空航天大学学报,2026,52(8):2876-2886
引用本文: 夏秋阳,刘猛,吴豪,等. 边界规避-追踪任务飞行员诱发振荡的触发与检测[J]. 北京航空航天大学学报,2026,52(8):2876-2886
Xia Q Y,Liu M,Wu H,et al. Triggering and detection of pilot-induced oscillations in boundary avoidance-tracking tasks[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(8):2876-2886 (in Chinese)
Citation: Xia Q Y,Liu M,Wu H,et al. Triggering and detection of pilot-induced oscillations in boundary avoidance-tracking tasks[J]. Journal of Beijing University of Aeronautics and Astronautics,2026,52(8):2876-2886 (in Chinese)

边界规避-追踪任务飞行员诱发振荡的触发与检测

doi: 10.13700/j.bh.1001-5965.2025.0497
详细信息
    通讯作者:

    E-mail:zhukeyong@buaa.edu.cn

  • 中图分类号: V249.4

Triggering and detection of pilot-induced oscillations in boundary avoidance-tracking tasks

More Information
  • 摘要:

    飞行员诱发振荡(PIO)是导致直升机事故的核心因素之一,其诱发机理与人机耦合系统的动力学特性密切相关。基于边界规避-追踪(BAT)理论模型,构建了创新的多任务飞行模拟实验平台,通过输入配置和边界难度2个关键触发因素的参数化调控,系统分析其对任务绩效及PIO现象的作用。实验结果表明:所设计的触发参数可有效诱发被试者行为的改变,进而影响其任务绩效和PIO特征响应,且改进的能量保持小波变换(PPWT)检测方法相较于传统相位-侵略性准则(PAC)方法和Klyde的小波变换方法具有更优的识别性能。研究结果改进了BAT任务框架下的PIO研究范式,提出的“触发-检测”实验和方法为直升机人机耦合现象的研究提供了新的技术路径。

     

  • 图 1  UH-60A直升机飞行动力学建模

    Figure 1.  UH-60A helicopter flight dynamic modeling

    图 2  导航方程和经纬度位置方程

    Figure 2.  Navigation equations and geodetic position equations

    图 3  BAT任务示意图

    Figure 3.  Demonstration for BAT task

    图 4  标靶示意图

    Figure 4.  Target demonstration

    图 5  模拟飞行任务的FlightGear界面

    Figure 5.  FlightGear interface of the flight simulation tasks

    图 6  飞行模拟实验现场照片

    Figure 6.  Flight simulation experiment site photo

    图 7  跨被试航迹误差的RMS值

    Figure 7.  Cross-subject RMS value for flight path error

    图 8  被试者11飞行任务20的示意图

    Figure 8.  Subject 11, task run 20 presentation

    图 9  跨被试撞靶得分的RMS值

    Figure 9.  Cross-subject target hitting score RMS value

    图 10  单任务航迹误差分布

    Figure 10.  Flight path error distribution of individual tasks

    图 11  被控对象的幅频相频特性曲线

    Figure 11.  Amplitude-frequency and phase-frequency characteristic curves of the controlled element

    图 12  S01T07飞行任务、FT4配置检测结果

    Figure 12.  Detection results of flight task S01T07 with task configuration FT4

    图 13  S21T14飞行任务、FT7配置检测结果

    Figure 13.  Detection results of flight task S21T14 with task configuration FT7

    图 14  S22T14飞行任务、FT7配置检测结果

    Figure 14.  Detection results of flight task S22T14 with task configuration FT7

    图 15  S30T07飞行任务、FT4配置检测结果

    Figure 15.  Detection results of flight task S30T07 with task configuration FT4

    图 16  PAC方法的PIO检测

    Figure 16.  PIO detection for the PAC method

    图 17  Klyde小波变换方法的PIO检测

    Figure 17.  PIO detection for the Klyde’s wavelet transform method

    图 18  S22T14任务输入信号的Klyde小波变换能量频谱

    Figure 18.  Klyde wavelet transform scalogram of the input signal for task S22T14

    图 19  S01T07任务的PPWT-PIO检测

    Figure 19.  PPWT-PIO detection for task S01T07

    图 20  S21T14任务的PPWT-PIO检测

    Figure 20.  PPWT-PIO detection for task S21T14

    图 21  S22T14任务的PPWT-PIO检测

    Figure 21.  PPWT-PIO detection for task S22T14

    图 22  S30T07任务的PPWT-PIO检测

    Figure 22.  PPWT-PIO detection for task S30T07

    表  1  模拟飞行任务配置

    Table  1.   Flight simulation task configurations

    序号 边界难度阶段 输入配置
    FT1 简单+困难
    FT2 简单+困难 输入延迟100 ms
    FT3 简单+困难 输入延迟200 ms
    FT4 简单+困难 输入延迟300 ms
    FT5 简单+困难 饱和速率$\dfrac{\text{π}}{18} $ rad/s
    FT6 简单+困难 饱和速率$\dfrac{\text{π}}{36} $ rad/s
    FT7 简单+困难 输入延迟300 ms+饱和速率$\dfrac{\text{π}}{36} $ rad/s
    下载: 导出CSV

    表  2  跨被试航迹误差和撞靶得分的RMS值

    Table  2.   RMS value for cross-subject flight path error and target hitting score

    序号 航迹误差RMS值/m 撞靶得分RMS值
    简单阶段 困难阶段 简单阶段 困难阶段
    FT1 38.104 29.517 2.801 2.757
    FT2 43.417 32.021 2.578 2.455
    FT3 44.092 34.699 2.568 2.326
    FT4 49.134 39.600 2.257 2.149
    FT5 38.075 29.949 2.731 2.661
    FT6 38.732 32.215 2.684 2.598
    FT7 49.388 38.480 2.282 2.162
    下载: 导出CSV

    表  3  单任务航迹误差分布的显著性检验

    Table  3.   Significance test for flight path error distribution of individual tasks

    变异来源 $ {\eta }^{2} $ $ F $ $ p $
    任务配置 0.055 11.230 <0.001
    边界难度 0.047 56.606 <0.001
    交互效应 0.001 0.246 0.961
    下载: 导出CSV

    表  4  发生PIO的时间区间

    Table  4.   Time interval in which PIO occurred

    任务编号发生PIO的时间区间/s
    S01T07[86.92, 92.95]
    S21T14[83.69, 109.28]
    S22T14[186.86, 199.34]
    S30T07[238.25, 248.17]
    下载: 导出CSV

    表  5  PAC方法和PPWT检测方法的性能对比

    Table  5.   Performance comparison of PAC method and PPWT detection methods

    任务 虚警率/% 漏报率/%
    PAC PPWT PAC PPWT
    S01T07 11.76 19.13 0 0
    S21T14 2.35 2.63 14.29 2.97
    S22T14 8.16 1.73 20.00 12.73
    S30T07 3.90 3.58 0 0
     注:PAC方法和PPWT检测方法的平均虚警率分别为6.54%和6.77%,平均漏报率分别为8.57%和3.93%。
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-07-18
  • 录用日期:  2025-09-26
  • 网络出版日期:  2025-10-11
  • 整期出版日期:  2026-08-31

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