

系统工程与电子技术 ›› 2026, Vol. 48 ›› Issue (4): 1125-1136.doi: 10.12305/j.issn.1001-506X.2026.04.03
• 电子技术 • 上一篇
收稿日期:2025-01-10
修回日期:2025-03-05
接受日期:2025-07-09
出版日期:2025-04-14
发布日期:2025-04-14
通讯作者:
高爱国
E-mail:gaoaiguo2024@163.com
作者简介:郁大照(1976—),男,教授,博士,主要研究方向为飞机环境适应性
Aiguo GAO(
), Dazhao YU, Hexiang HUANG
Received:2025-01-10
Revised:2025-03-05
Accepted:2025-07-09
Online:2025-04-14
Published:2025-04-14
Contact:
Aiguo GAO
E-mail:gaoaiguo2024@163.com
Supported by:摘要:
针对复杂战场环境下机载电子设备容易受到高功率微波电磁干扰问题,对机载微带天线耦合效应进行研究。提出了一种窄带和超宽带高功率微波辐照下天线耦合建模分析方法,建立了微带天线上装平台辐照模型,从不同脉冲参数、上装平台前后,不同极化方式和入射角进行仿真分析,给出了天线端口耦合电压变化规律。仿真结果表明,耦合电压峰值与辐照场强幅值呈线性正比关系;窄带辐照下,载频越接近天线工作频率,耦合效应越强;超宽带辐照下,脉冲宽度越窄,耦合电压峰值越大。上装平台使天线耦合电压峰值在窄带和超宽带辐照下最大增幅分别达11.65%和9.39%。入射电场沿天线极化方向的分量越大,耦合电压越大。研究结果为机载电子设备在强电磁脉冲辐照下的天线耦合分析与防护设计提供理论依据与参考。
中图分类号:
高爱国, 郁大照, 黄鹤翔. 机载微带天线高功率微波耦合效应研究[J]. 系统工程与电子技术, 2026, 48(4): 1125-1136.
Aiguo GAO, Dazhao YU, Hexiang HUANG. Research on high power microwave coupling effects of airborne microstrip antennas[J]. Systems Engineering and Electronics, 2026, 48(4): 1125-1136.
表2
不同方位角下耦合峰值电压最大值"
| 天线上装平台前后 | 辐照脉冲类型 | θ,φ,ψ/(°) | 耦合电压峰值/V |
| 单天线 | HPM | 45,30,90 | 949.68 |
| HPM | 45,210,90 | 946.43 | |
| HPM | 45,110,0 | 860.19 | |
| HPM | 45,290,0 | 896.53 | |
| 天线上装平台后 | HPM | 45,20,90 | 898.65 |
| HPM | 45,210,90 | 927.98 | |
| HPM | 45,120,0 | 936.11 | |
| HPM | 45,290,0 | 949.82 | |
| 单天线 | UWB | 45,0,90 | 32.36 |
| UWB | 45,180,90 | 27.05 | |
| UWB | 45,90,0 | 28.33 | |
| UWB | 45,270,0 | 30.43 | |
| 天线上装平台后 | UWB | 45,0,90 | 26.31 |
| UWB | 45,180,90 | 29.79 | |
| UWB | 45,90,0 | 33.65 | |
| UWB | 45,270,0 | 37.90 |
| 1 | 苏东林, 蔡少雄. 电磁博弈背景下加强电磁环境适应性试验鉴定的若干思考[J]. 国防科技, 2023, 44 (3): 5- 10. |
| SU D L, CAI S X. Remarks on strengthening electromagnetic environment adaptability testing and assessment in the context of electromagnetic warfare[J]. National Defense Technology, 2023, 44 (3): 5- 10. | |
| 2 | 刘尚合, 马贵蕾, 满梦华, 等. 电磁防护仿生研究进展[J]. 高电压技术, 2022, 48 (5): 1750- 1762. |
| LIU S H, MA G L, MAN M H, et al. Research progress of electromagnetic protection biomimetics[J]. High Voltage Technology, 2022, 48 (5): 1750- 1762. | |
| 3 | GIRI D V, HOAD R, SABATH F. Implications of high-power electromagnetic (HPEM) environments on electronics[J]. IEEE Electromagnetic Compatibility Magazine, 2020, 9 (2): 37- 44. |
| 4 |
ZHANG J, ZHANG D, FAN Y W, et al. Progress in narrowband high-power microwave sources[J]. Physics of Plasmas, 2020, 27 (1): 010501.
doi: 10.1063/1.5126271 |
| 5 | LI Q W, CAO W, DING J, et al. Research on high-power electromagnetic effect and protective technology of electronic equipments[C]//Proc. of the IEEE 9th International Symposium on Microwave, Antenna, Propagation and EMC Technologies for Wireless Communications, 2022: 333−337. |
| 6 | LIU Q F, ZHENG S Q, ZUO Y, et al. Electromagnetic environment effects and protection of complex electronic information systems[C]//Proc. of the IEEE MTT-S International Conference on Numerical Electromagnetic and Multiphysics Modeling and Optimization, 2020. |
| 7 |
LIN J C, ZHAO G.. A coupling path analysis method for high power microwave interaction with electronic systems[J]. IEEE Letters on Electromagnetic Compatibility Practice and Applications, 2021, 3 (1): 7- 10.
doi: 10.1109/LEMCPA.2020.3035968 |
| 8 |
LIU T, XU L, LI Q W, et al. Joint analysis of front-door and back-door couplings of PIN limiter based on improved equivalent circuit model[J]. Electronics, 2022, 11 (23): 3921.
doi: 10.3390/electronics11233921 |
| 9 | PARFENOV Y V, CHEPELEV V M, RADASKY W A. About the possibility of mistakes when using unipolar electric field pulses when assessing electronic device immunity to UWB pulses[C]//Proc. of the IEEE International Symposium on Electromagnetic Compatibility and IEEE Asia-Pacific Symposium on Electromagnetic Compatibility, 2018: 928−931. |
| 10 |
MIN S H, JUNG H, KWON O, et al. Analysis of electromagnetic pulse effects under high-power microwave sources[J]. IEEE Access, 2021, 9, 136775- 136791.
doi: 10.1109/ACCESS.2021.3117395 |
| 11 | HAO L J, XIAO Y J, XIE J, et al. Construction and transmission mechanism of exterior ballistics of high-power microwave weapons[J]. Soft Computing, 2021, 25 (18): 12401- 12414. |
| 12 |
GASSAB O, SHAO Y L, SU Z Z, et al. Coupling analysis of shielded and unshielded star quad cables excited by an intentional electromagnetic pulse[J]. IEEE Trans. on Electromagnetic Compatibility, 2023, 65 (3): 689- 704.
doi: 10.1109/TEMC.2023.3251315 |
| 13 |
, et al. Analysis of the influence of the structural parameters of aircraft braided-shield cable on shielding effectiveness[J]. IEEE Trans. on Electromagnetic Compatibility, 2020, 62 (4): 1028- 1036.
doi: 10.1109/TEMC.2019.2926393 |
| 14 |
RABAT A, BONNET P, DRISSI K E K, et al. An analytical evaluation of the shielding effectiveness of enclosures containing complex apertures[J]. IEEE Access, 2021, 9, 147191- 147200.
doi: 10.1109/ACCESS.2021.3123441 |
| 15 | HU P Y, SUN X Y, CHEN J. Hybrid model for estimating the shielding effectiveness of metallic enclosures with arbitrary apertures[J]. IET Science, Measurement & Technology, 2020, 14 (4): 462- 470. |
| 16 |
陈凯柏, 高敏, 周晓东, 等. 毫米波探测器的超宽带耦合特性[J]. 系统工程与电子技术, 2022, 44 (12): 3641- 3651.
doi: 10.12305/j.issn.1001-506X.2022.12.07 |
|
CHEN K B, GAO M, ZHOU X D, et al. Ultra-wideband coupling characteristics of millimeter wave detector[J]. Systems Engineering and Electronics, 2022, 44 (12): 3641- 3651.
doi: 10.12305/j.issn.1001-506X.2022.12.07 |
|
| 17 |
LV S N, XIAO C, LOU W Z, et al. Simulation and experimental study on coupling effect of fuze under ultra-wide spectrum strong electromagnetic pulse[J]. Journal of Physics: Conference Series, 2023, 2478 (12): 122025.
doi: 10.1088/1742-6596/2478/12/122025 |
| 18 |
, et al. Study on the effects of ultra-wideband electromagnetic pulses on unmanned aerial vehicles[J]. IEEE Trans. on Electromagnetic Compatibility, 2024, 66 (4): 1192- 1202.
doi: 10.1109/TEMC.2024.3386551 |
| 19 |
WANG Y M, MA L Y, CHEN Y Z. Electromagnetic energy coupling path and protection method of UAV datalink against broad-spectrum high-power microwave radiation[J]. Radioengineering, 2022, 31 (2): 201- 209.
doi: 10.13164/re.2022.0201 |
| 20 |
ZHANG Z, ZHOU Y, ZHANG Y, et al. Strong electromagnetic interference and protection in UAVs[J]. Electronics, 2024, 13 (2): 393.
doi: 10.3390/electronics13020393 |
| 21 |
MAO Q D, XIANG Z W, HUANG L Y, et al. High-power microwave pulse-induced failure on unmanned aerial vehicle system[J]. IEEE Trans. on Plasma Science, 2023, 51 (7): 1885- 1893.
doi: 10.1109/TPS.2023.3236300 |
| 22 |
YANG C X, CUI D H, CHEN Z H, et al. High-power microwave damage assessment method for UAV[J]. Journal of Physics: Conference Series, 2023, 2478 (8): 082011.
doi: 10.1088/1742-6596/2478/8/082011 |
| 23 |
IBEOBI S, PAN X C. Study of electromagnetic pulse (EMP) effect on surveillance unmanned aerial vehicles (UAVs)[J]. Journal of Mechanical Engineering, Automation and Control Systems, 2021, 2 (1): 44- 53.
doi: 10.21595/jmeacs.2021.21926 |
| 24 | PERMATA D, GURNING M C, MARTIN Y, et al. Electromagnetic interference shielding in unmanned aerial vehicle against lightning strike[J]. Telecommunication Computing Electronics and Control, 2019, 17 (2): 915. |
| 25 |
ZHAO M, CHEN Y Z, ZHOU X, et al. Investigation on falling and damage mechanisms of UAV illuminated by HPM pulses[J]. IEEE Trans. on Electromagnetic Compatibility, 2022, 64 (5): 1412- 1422.
doi: 10.1109/TEMC.2022.3187017 |
| 26 | GU X D, CUI D H, LU F B, et al. Analysis on damage efficiency of high power microwave to marine navigation radar[C]//Proc. of the 23rd International Microwave and Radar Conference, 2020: 271−273. |
| 27 | LIANG Y Q, HUANG Z Y, CHEN R, et al. Coupling effect of high intensity electromagnetic pulse on the shipboard integrated RF system[C]//Proc. of the IEEE MTT-S International Microwave Workshop Series on Advanced Materials and Processes for RF and THz Applications, 2022. |
| 28 |
CHEN K B, LIU S H, GAO M, et al. Simulation and analysis of an FMCW radar against the UWB EMP coupling responses on the wires[J]. Sensors, 2022, 22 (12): 4641.
doi: 10.3390/s22124641 |
| 29 | JIANG W, LI G Q, WANG T. Research on strong electromagnetic pulse coupling of radar backdoor[C]//Proc. of the IEEE 9th Joint International Information Technology and Artificial Intelligence Conference, 2020: 2171−2175. |
| 30 | 胡晓. 电子装备系统级平台电磁脉冲耦合的混合仿真方法研究[D]. 西安: 西安电子科技大学, 2022. |
| HU X. Study on hybrid simulation methods for analyzing electromagnetic pulse coupling of electronic equipment system-level platforms[D]. Xi’an: Xidian University, 2022. | |
| 31 |
SHIM J, KAM D G, KWON J H, et al. Circuital modeling and measurement of shielding effectiveness against oblique incident plane wave on apertures in multiple sides of rectangular enclosure[J]. IEEE Trans. on Electromagnetic Compatibility, 2010, 52 (3): 566- 577.
doi: 10.1109/TEMC.2009.2039483 |
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