Volume 47 Issue 3
Apr.  2018
Turn off MathJax
Article Contents

Yu Yuting, Shu Jingrong, Ding Bosheng. Design of fuze-warhead coordination based on laser fuze and prefabricated fragment ammunition[J]. Infrared and Laser Engineering, 2018, 47(3): 303003-0303003(6). doi: 10.3788/IRLA201847.0303003
Citation: Yu Yuting, Shu Jingrong, Ding Bosheng. Design of fuze-warhead coordination based on laser fuze and prefabricated fragment ammunition[J]. Infrared and Laser Engineering, 2018, 47(3): 303003-0303003(6). doi: 10.3788/IRLA201847.0303003

Design of fuze-warhead coordination based on laser fuze and prefabricated fragment ammunition

doi: 10.3788/IRLA201847.0303003
  • Received Date: 2017-10-10
  • Rev Recd Date: 2017-12-20
  • Publish Date: 2018-03-25
  • Aiming at the fragmentation dispersion characteristic of prefabricated fragment ammunition, fuze-warhead coordination was designed based on prefabricated fragment ammunition controlled by laser proximity fuze. Ideal warhead explosion height was obtained through formula deduction, Matlab software simulation and calculation of target damage at a equivalent area. Under this condition of the ideal explosion height, the laser fuze was designed through selecting appropriate laser beam detection field. Thus a optimal design of fuze-warhead coordination under specified conditions was completed. Results showed that:in the the range of 5 m of the missile dispersion, 60 pitch angle and 5 m3 m3 m command vehicle target, effective fragment density is the biggest at the warhead explosion 4-6 m height. Detection probability and height of the laser proximity fuze are analyzed and calculated at the height interval of the detonating height, the optimal beam emission angle of laser fuze is from 17 to 30. This design is of practical reference value for the application of the prefabricated fragment ammunition controlled by laser fuze.
  • [1] Zong Lina. Fuze-warhead coordination simulation of portable anti helicopter research on computer[D]. Nanjing:Nanjing University of Science and Technology, 2006. (in Chinese)宗丽娜. 便携式反直升机引战配合的计算机仿真研究[D].南京:南京理工大学, 2006.
    [2] Jiang Yiyang, Ni Bangfu, Qian Hongqing. Modeling and simulation of combination laser proximity fuse detecting warship target[J]. Infrared and Laser Engineering, 2016, 45(10):1006001. (in Chinese)姜易阳, 倪邦福, 钱红庆. 激光近炸复合引信探测舰船目标的建模与仿真[J]. 红外与激光工程, 2016, 45(10):1006001.
    [3] Nie Hao, Wu Zhenglong. Research and calculation on damage efficiency against armored target of time-fuzed ammunition[J]. Journal of Ordnance Equipment Engineering, 2015, 36(5):57-59. (in Chinese)聂浩, 吴正龙. 预制破片弹对装甲目标毁伤效能计算[J].兵器装备工程学报, 2015, 36(5):57-59.
    [4] Chen Huiming, Jia Xiaodong, Cai Kerong. Laser Fuze Technology[M]. Beijing:National Defense Industry Press,2016:256-257. (in Chinese)陈慧敏, 贾晓东, 蔡克荣. 激光引信技术[M]. 北京:国防工业出版社, 2016.
    [5] Shi Zhiyong, Pan Xiaosheng, Zhang Qian. High-precision pulsed laser measuring distance by time delay method[J].Optics and Precision Engineering, 2014, 22(2):252-258. (in Chinese)施智勇, 潘晓声, 张谦. 利用延时法进行高精度脉冲激光测距[J]. 光学精密工程, 2014, 22(2):252-258.
    [6] Wang Fengjie, Chen Huimin. Simulation of characteristics of cloud and fog echo for pluse laser fuse[J]. Optics and Precision Engineering, 2015, 23(10z):1-7. (in Chinese)王凤杰, 陈慧敏. 脉冲激光引信云雾回波特性仿真[J]. 光学精密工程, 2015, 23(10z):1-7.
    [7] Li Dianjun, Wang Hualong, Yang Guilong, et al. Comprehension and usage of ordinary terminologies for laser taking peak power as example[J]. Chinese Optics, 2015, 8(5):873-880. (in Chinese)李殿军, 王化龙, 杨贵龙, 等. 峰值功率等激光术语的理解与应用问题[J]. 中国光学, 2015, 8(5):873-880.
    [8] Tian Jingrong, Song Yanrong, Wang Li. Error analysis of peak power formula in pulsed lasers[J]. Chinese Optics, 2014, 7(2):253-259. (in Chinese)田金荣, 宋晏蓉, 王丽. 常用激光峰值功率公式误差分析[J]. 中国光学, 2014, 7(2):253-259.
    [9] Zhu Defang, Zhang Zhen, Wang Wenqiang. Target recongnition method of laser proximity fuze for anti-radiation missle[J]. Journal of Missiles and Guidance, 2015, 35(3):75-78. (in Chinese)诸德放, 张真, 王文强. 空地反辐射导弹激光近炸引信目标识别方法[J]. 弹箭与制导学报, 2015, 35(3):75-78.
    [10] Shi Chunbo, Ma Xianhua. Analysis of the detecting visual field influenced on the oprating distance of the laser fuze[J]. Infrared and Laser Engineering, 2007, 36(21):636-639. (in Chinese)史春波, 马献华. 探测视场对激光引信作用距离影响分析[J]. 红外与激光工程, 2007, 36(21):636-639.
    [11] Zhang Zeyu, Xie Xiaoping, Duan Tao, et al. Numerical calculation of 3.8m and 1.55m laser radiation transmission characteristic under foggy condition[J]. Infrared and Laser Engineering, 2016, 45(s1):S104007. (in Chinese)张泽宇, 谢小平, 段弢, 等. 3.8m和1.55m激光辐射在雾中传输特性的数值计算[J]. 红外与激光工程, 2016, 45(s1):S104007.
  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Article Metrics

Article views(719) PDF downloads(119) Cited by()

Related
Proportional views

Design of fuze-warhead coordination based on laser fuze and prefabricated fragment ammunition

doi: 10.3788/IRLA201847.0303003
  • 1. Electronic Communication Engineering College,Anhui Xinhua University,Hefei 230008,China;
  • 2. Anhui Dongfeng Electromechanical Technology Co. LTD.,Hefei 230022,China

Abstract: Aiming at the fragmentation dispersion characteristic of prefabricated fragment ammunition, fuze-warhead coordination was designed based on prefabricated fragment ammunition controlled by laser proximity fuze. Ideal warhead explosion height was obtained through formula deduction, Matlab software simulation and calculation of target damage at a equivalent area. Under this condition of the ideal explosion height, the laser fuze was designed through selecting appropriate laser beam detection field. Thus a optimal design of fuze-warhead coordination under specified conditions was completed. Results showed that:in the the range of 5 m of the missile dispersion, 60 pitch angle and 5 m3 m3 m command vehicle target, effective fragment density is the biggest at the warhead explosion 4-6 m height. Detection probability and height of the laser proximity fuze are analyzed and calculated at the height interval of the detonating height, the optimal beam emission angle of laser fuze is from 17 to 30. This design is of practical reference value for the application of the prefabricated fragment ammunition controlled by laser fuze.

Reference (11)

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return