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飞行器GNSS接收机静电放电干扰效应分析

范宇清 程二威 魏明 张庆龙 陈亚洲

范宇清, 程二威, 魏明, 等. 飞行器GNSS接收机静电放电干扰效应分析[J]. 强激光与粒子束, 2019, 31: 123201. doi: 10.11884/HPLPB201931.190268
引用本文: 范宇清, 程二威, 魏明, 等. 飞行器GNSS接收机静电放电干扰效应分析[J]. 强激光与粒子束, 2019, 31: 123201. doi: 10.11884/HPLPB201931.190268
Fan Yuqing, Cheng Erwei, Wei Ming, et al. Analysis on the interference effect of electrostatic discharge of GNSS receiver on aircraft[J]. High Power Laser and Particle Beams, 2019, 31: 123201. doi: 10.11884/HPLPB201931.190268
Citation: Fan Yuqing, Cheng Erwei, Wei Ming, et al. Analysis on the interference effect of electrostatic discharge of GNSS receiver on aircraft[J]. High Power Laser and Particle Beams, 2019, 31: 123201. doi: 10.11884/HPLPB201931.190268

飞行器GNSS接收机静电放电干扰效应分析

doi: 10.11884/HPLPB201931.190268
基金项目: 国家自然科学基金面上项目(51677191)
详细信息
    作者简介:

    范宇清(1995—),男,硕士研究生,研究方向为电磁环境模拟与电磁防护;120705947@qq.com

  • 中图分类号: TN96

Analysis on the interference effect of electrostatic discharge of GNSS receiver on aircraft

  • 摘要: 针对飞行器全球卫星导航系统接收机易受静电放电干扰的问题,研究了机体表面电晕放电与机务维修火花放电对接收机的干扰效应。分析了静电放电的时频域特征,使用针球电极与高压源组成的模拟器开展了电晕放电对接收机的前门耦合实验,证明了电晕脉冲产生的辐射场对接收机无明显干扰效应。基于人体金属ESD模型开展了火花放电对接收机的干扰效应实验,发现浪涌电流易导致接收机串口转换芯片电位波动,读写程序主循环卡死,应针对串口端进行静电阻抗器防护。
  • 图  1  电晕脉冲电流时域特征

    Figure  1.  Time domain characteristics of the current of the corona pulse

    图  2  电晕脉冲电流频域特征

    Figure  2.  Frequency domain characteristics of the current of the corona pulse

    图  3  ESD人体金属模型电流时域特征

    Figure  3.  Time domain characteristics of current in ESD HBM

    图  4  ESD人体金属模型频域特征

    Figure  4.  Frequency domain characteristics of current in ESD HBM

    图  5  充电电压为正时,电晕放电时域波形及频谱

    Figure  5.  Time domain waveform and spectrum of corona discharge when the charging voltage is positive

    图  6  充电电压为负时,电晕放电时域波形及频谱

    Figure  6.  Time domain waveform and spectrum of corona discharge when the charging voltage is negative

    图  7  充电电压为正时,火花放电时域波形及频谱

    Figure  7.  Time domain waveform and spectrum of spark discharge when the charging voltage is positive

    图  8  充电电压为负时,火花放电时域波形及频谱

    Figure  8.  Time domain waveform and spectrum of spark discharge when the charging voltage is negative

    图  9  电晕放电模拟器

    Figure  9.  Corona discharge simulator

    图  10  电晕放电干扰效应实验框图

    Figure  10.  Block diagram of experimental study of effects of corona discharge

    图  11  接收机放电位置图

    Figure  11.  Location of the receiver discharge

    表  1  ABCD四个面干扰电压临界值

    Table  1.   Thresholds of four face-interference-voltages of the receiver

    discharge positionair discharge
    voltage (horizontal coupling plate)/kV
    air discharge
    voltage (vertical coupling plate)/kV
    direct contact discharge voltage/kV
    side A26286
    side B1976
    side C15 22 5
    side D102126
    下载: 导出CSV

    表  2  接收机各部位干扰电压临界值

    Table  2.   Intercept voltage threshold for each part of the receiver

    discharge position as shown in fig. 11(b)direct contact discharge voltage/kV
    1no effect
    219
    38
    44
    511
    下载: 导出CSV
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出版历程
  • 收稿日期:  2019-07-19
  • 修回日期:  2019-10-19
  • 刊出日期:  2019-12-01

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