Comprehensive Detection Methods for the Millimeter-wave Fuze

KONG Linghui, PENG Zhiling, HAN Wenbin, LI Shaojie, XIONG Ran, XIE Fei

Equipment Environmental Engineering ›› 2026, Vol. 23 ›› Issue (5) : 17-24.

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Equipment Environmental Engineering ›› 2026, Vol. 23 ›› Issue (5) : 17-24. DOI: 10.7643/ issn.1672-9242.2026.05.003
Weapons Equipment

Comprehensive Detection Methods for the Millimeter-wave Fuze

  • KONG Linghui1, PENG Zhiling1,*, HAN Wenbin2, LI Shaojie2, XIONG Ran3, XIE Fei1
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Abstract

To meet the precise performance parameter testing requirements of the millimeter-wave fuze across all critical stages of the lifecycle, including production calibration, warehousing quality inspection, operational deployment, and maintenance re-inspection, and to specifically address the pain points of traditional testing equipment such as high hardware costs, low integration of functional modules, and cumbersome and time-consuming testing procedures, the work aims to design a low-cost, highly integrated, and user-friendly comprehensive test system for the millimeter-wave radio proximity fuze. Firstly, the detection principles of the fuze's core performance parameters were systematically reviewed, including arming time, operating voltage and current, detonation distance and sensitivity, frequency, and transmit power, and on this basis, an integrated detection system was constructed, consisting of a control unit, a millimeter-wave parameter testing unit, a target simulation testing unit, and supporting data analysis software, with the standardized testing procedures and operational specifications for each parameter clearly defined. The system innovatively integrated key technologies such as characteristic voltage timing capture, heterodyne frequency algorithms, the Doppler effect, and data fitting calibration to successfully achieve multi-parameter acquisition and integrated detection. The test data support real-time display, classified storage, and format export, facilitating quick viewing, traceability, and subsequent analysis by testers, which not only meets the accuracy requirements of engineering applications but also significantly simplifies the operation process and improves detection efficiency, thereby providing an efficient and practical technical means for the quality control and reliability assurance of the millimeter-wave fuze.

Key words

millimeter-wave fuze / fuze detection / integrated test system / multi-parameter integrated detection / Doppler effect / method optimization

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KONG Linghui, PENG Zhiling, HAN Wenbin, LI Shaojie, XIONG Ran, XIE Fei. Comprehensive Detection Methods for the Millimeter-wave Fuze[J]. Equipment Environmental Engineering. 2026, 23(5): 17-24 https://doi.org/10.7643/ issn.1672-9242.2026.05.003

References

[1] 李晓, 李万峰, 段磊. 一种先进的毫米波伪随机码调相脉冲多普勒引信[J]. 航空兵器, 2007, 14(3): 45-48.
LI X, LI W F, DUAN L.An Advanced Millimeter Wave Pulsed-Doppler Fuze with Pseudorandom Code Phase Modulation[J]. Aero Weaponry, 2007, 14(3): 45-48.
[2] 邱丽波, 李政, 成学军, 李廷军. 利用计算机设计反雷达隐身涂层[J]. 现代电子技术. 2002, (8): 28-30.
QIU L B, LI Z, CHENG X J, LI T J.Computer-aided Design of Anti-radar Stealth Coating[J]. Modern Electronic Technology, 2002 (8): 28-30.
[3] 岛新煜, 高敏. 毫米波近炸引信发展现状及关键技术[J]. 飞航导弹, 2018(5): 86-90.
DAO X Y, GAO M.Development Status and Key Technologies of Millimeter-Wave Proximity Fuze[J]. Aerodynamic Missile Journal, 2018(5): 86-90.
[4] 李玉清. 近20年来国外导弹引信技术研究与发展概况[J]. 制导与引信, 2002, 23(3): 1-8.
LI Y Q.Research and Development of Foreign Missile Fuze Technologies in the Past Two Decades[J]. Guidance and Fuze, 2002, 23(3): 1-8.
[5] 胡能文. 毫米波测试系统的参数测量方法研究[D]. 南京: 南京理工大学, 2013.
HU N W.Research on Parameter Measurement Method of Millimeter Wave Test System[D]. Nanjing: Nanjing University of Science and Technology, 2013.
[6] 董树义, 张栋国, 阎毅. 毫米波探测器应用概况[C]// 1991年全国微波会议论文集. 西安: 中国电子学会微波学会, 1991.
DONG S Y, ZHANG D G, YAN Y.Application Overview of Millimeter Wave Detector[C]// Proceedings of 1991 National Microwave Conference. Xi'an: Microwave Society of Chinese Institute of Electronics, 1991.
[7] 李朝. 毫米波引信综合测试技术的研究[D]. 太原: 中北大学, 2019.
LI Z.Research on Comprehensive Testing Technology of Millimeter Wave Fuze[D]. Taiyuan: North University of China, 2019.
[8] 肖泽龙, 张恒, 董浩, 等. 多普勒对空引信回波分析及碰炸优先判决准则研究[J]. 兵工学报, 2016, 37(10): 1820-1827.
XIAO Z L, ZHANG H, DONG H, et al.Research on Modeling and Simulation of Echo Signal of Pulse Doppler Fuze and Judgment Criterion of Its Impact[J]. Acta Armamentarii, 2016, 37(10): 1820-1827.
[9] 杨杰. 某毫米波设备自动测试系统的设计与实现[D]. 成都: 电子科技大学, 2012.
YANG J.Design and Implementation of Automatic Test System for a Certain Millimeter Wave Equipment [D]. Chengdu: University of Electronic Science and Technology of China, 2012.
[10] 吴莹. 无线电引信信号处理测试系统的设计与实现[C]// 第九届全国信号和智能信息处理与应用学术会议论文集. 长春: 中国高科技产业化研究会, 2015.
WU Y.Design and Implementation of Radio Fuze Signal Processing Test System[C]// Proceedings of Special Issue of the 9th National Conference on Signal and Intelligent Information Processing and Application. Changchun: China High-tech Industrialization Association, 2015.
[11] 梁勇. 基于单片机的引信多普勒信号采集测试系统的设计[D]. 太原: 中北大学, 2014.
LIANG Y.Design of Doppler Signal Acquisition and Test System for Fuze Based on Single-chip Microcomputer[D]. Taiyuan: North University of China, 2014.
[12] 赖根, 肖明清, 夏锐, 等. 国外自动测试系统发展现状综述[J]. 探测与控制学报, 2005, 27(3): 26-30.
LAI G, XIAO M Q, XIA R, et al.Development of Foreign Automatic Test System[J]. Journal of Detection & Control, 2005, 27(3): 26-30.
[13] 谷雨桐, 景华, 司马涛, 等. 一种毫米波引信低频预处理电路[J]. 弹箭与制导学报, 2011, 31(3): 129-130.
GU Y T, JING H, SIMA T, et al.A Low-Frequency Preconditioning Circuit for Millimeter Wave Fuze[J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2011, 31(3): 129-130.
[14] 杨毅. 毫米波FMCW雷达近炸引信信号处理设计与实现[J]. 电子技术应用, 2010, 36(10): 53-56.
YANG Y.Design and Implementation of Signal Processor for FMCW Millimeter Radar Fuze[J]. Application of Electronic Technique, 2010, 36(10): 53-56.
[15] 梁勇, 赵河明, 张恩愫. 基于单片机的多普勒信号测试系统的设计[J]. 制造业自动化, 2014, 36(3): 133-135.
LIANG Y, ZHAO H M, ZHANG E S.Design of Doppler Signal Testing System Based on Microcontroller[J]. Manufacturing Automation, 2014, 36(3): 133-135.
[16] 刘景萍, 吴大俊. 毫米波引信共形天线的设计[J]. 制导与引信, 2008, 29(2): 15-17.
LIU J P, WU D J.Design of Conformal Antenna for Millimeter Wave Fuze[J]. Guidance & Fuze, 2008, 29(2): 15-17.
[17] 崔占忠. 近炸引信原理[M]. 北京: 北京理工大学出版社, 2009: 29-30.
CUI Z Z.Principle of Proximity Fuze[M]. Beijing: Beijing Institute of Technology Press, 2009: 29-30.
[18] 韩永金. 主动式脉冲多普勒雷达引信测试设备设计[J]. 制导与引信, 2004, 25(3): 44-46.
HAN Y J.Design of Active Pulse Doppler Radar Fuze Test Set[J]. Guidance & Fuze, 2004, 25(3): 44-46.
[19] 弋稳. 雷达接收机技术[M]. 北京: 电子工业出版社, 2005: 61-62.
YI W.Radar Receiver Technology[M]. Beijing: Publishing House of Electronics Industry, 2005: 61-62.
[20] 路明, 张戎, 陶冠时, 等. 无线电引信自动测试技术综述[J]. 舰船电子工程, 2009, 29(5): 10-12+17.
LU M, ZHANG R, TAO G S, et al. Review on Automatic Test Technology of Radio Fuze[J]. Ship Electronic Engineering, 2009, 29 (5): 10-12+17.
[21] 孙泽权. 基于虚拟仪器的传感器数据采集与处理系统设计[J]. 电子技术, 2025, 54(2): 24-25.
SUN Z Q.Design of Sensor Data Acquisition and Processing System Based on Virtual Instruments[J]. Electronic Technology, 2025, 54(2): 24-25.
[22] 伍超. 毫米波引信目标信号模拟关键技术研究[D].南京理工大学, 2024. DOI:10.27241/d.cnki.gnjgu.2024.000439.
WU C.Research on Key Technologies of Target Signal Simulation for Millimeter Wave Fuze[D]. Nanjing University of Science and Technology, 2024. DOI:10.27241/d.cnki.gnjgu.2024.000439.
[23] 杨泽望, 苏建刚. 基于PXI总线的制导弹药通用测试系统设计[J]. 火力与指挥控制, 2004, (6): 90-93.
YANG Z W, SU J G.Design of General Test System for Guided Ammunition Based on PXI Bus[J]. Fire Control & Command Control, 2004 (6): 90-93.
[24] 尹园威, 马彦恒, 李刚, 等. 基于虚拟仪器的测试信号模拟系统设计[J]. 计算机测量与控制, 2011, 19(6): 1445-1448.
YIN Y W, MA Y H, LI G, et al.Design of Test Signal Simulator System Based on VI[J]. Computer Measurement & Control, 2011, 19(6): 1445-1448.
[25] 常晓飞, 符文星, 王民钢, 杨尧. 基于LabWindows/CVI的引信测试系统的设计[J]. 电子测量技术. 2008, 31(8): 89-91, 125.
CHANG X F, FU W X, WANG M G, YANG Y.Design of Fuze Test System Based on LabWindows/CVI[J]. Electronic Measurement Technology, 2008, 31(8): 89-91, 125.
[26] 张燕, 王帮峰, 龚科. 基于虚拟仪器的高速数据采集系统开发[J]. 中国科技信息, 2010(5): 120-122.
ZHANG Y, WANG B F, GONG K.Data Acquisition System Research Based on Virtual Instrument[J]. China Science and Technology Information, 2010(5): 120-122.
[27] 韩琪. 基于虚拟仪器的数据采集与分析系统研究与设计[D]. 北京: 北京交通大学, 2012.
HAN Q.Research and Design of Data Acquisition and Analysis System Based on Virtual Instrument [D]. Beijing: Beijing Jiaotong University, 2012.
[28] 赵忠文, 戴迎春, 宋楠. 军用测试仪器及测试技术发展分析[C]// 全国第五届信号和智能信息处理与应用学术会议论文集. 银川: 中国高科技产业化研究会, 2011.
ZHAO Z W, DAI Y C, SONG N.Development Analysis of Military Test Instruments and Test Technology[C]// Proceedings of Special Issue of the 5th National Conference on Signal and Intelligent Information Processing and Application. Yinchuan: China High-tech Industrialization Association, 2011.
[29] 李超, 焦瑞莉, 陈家田. 基于LabVIEW的并行数据采集系统设计[J]. 辽宁工程技术大学学报(自然科学版), 2012, 31(1): 89-92.
LI C, JIAO R L, CHEN J T.Design of Parallel Data Acquisition System Based on LabVIEW[J]. Journal of Liaoning Technical University (Natural Science), 2012, 31(1): 89-92.
[30] 牛亮, 钱天伟, 王秋霞, 等. 某型导弹无线电近炸引信测试系统[J]. 四川兵工学报, 2011(4): 47-49.
NIU L, QIAN T W, WANG Q X, et al.Test System of Radio Proximity Fuze in Certain Type of Missile[J]. Journal of Sichuan Ordnance, 2011(4): 47-49.
[31] 周春桂, 许爱国, 靳合力, 等. 多普勒引信目标信号极值识别算法[J]. 中北大学学报(自然科学版), 2013, 34(3): 310-313.
ZHOU C G, XU A G, JIN H L, et al.Target Signal Extremum Recognition Algorithm on Doppler Fuze[J]. Journal of North University of China, 2013, 34(3): 310-313.
[32] 杨勇. 一种无线电近炸引信对空目标动态测试试验平台的设计与开发[D]. 成都: 电子科技大学, 2016.
YANG Y.Design and Development of Dynamic Test Platform for Air Target of Radio Proximity Fuze [D]. Chengdu: University of Electronic Science and Technology of China, 2016.
[33] 陈志鹏, 李豪杰, 严秉谦, 等. 基于数据装定的坦克炮毫米波近炸引信炸高控制方法[J]. 兵工学报, 2024, 45(6): 2034-2043.
CHEN Z P, LI H J, YAN B Q, et al.Blasting Height Control Method of Millimeter Wave Proximity Fuze for Tank Gun Based on Data Setting[J]. Acta Armamentarii, 2024, 45(6): 2034-2043.
[34] 谢国善, 熊鹏俊. 基于LabVIEW的虚拟仪器设计研究[J]. 舰船电子工程, 2010, 30(10): 126-128.
XIE G S, XIONG P J.Research on Virtual Instrument Design Based on LabVIEW[J]. Ship Electronic Engineering, 2010, 30(10): 126-128.
[35] 李俊, 陈湘波. LabVIEW与C语言的混合编程[J]. 自动化与仪表, 2001(5): 62-64.
LI J, CHEN X B.Hybrid Programming of LabVIEW and C Language[J]. Automation & Instrumentation, 2001(5): 62-64.
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