[an error occurred while processing this directive] [an error occurred while processing this directive] [an error occurred while processing this directive]
[an error occurred while processing this directive]

Research on the Technology of Simultaneously Detonating the MEFP Warhead

  • ZHANG Xinhua 1 ,
  • ZHAO Jiaqi 1 ,
  • SHI Jin 2
Expand
  • 1 Anhui Hongxing Electrical Polytron Technologies Inc, Hefei 231135, China
  • 2 School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China

Received date: 2020-07-31

  Online published: 2025-02-20

Abstract

In order to realize the simultaneous initiation of the MEFP (multiple explosively formed projectile) warhead at multiple points in a straight line, relevant research has been carried out on the multi-channel detonating cord transmission and expansion component. The silver detonating cord with higher detonation velocity accuracy is selected to improve the synchronization performance of multi-point detonation. The precise position of each detonation point of the detonation transmission component is determined through experiments, and the analysis is combined with simulation. The results show that the use of the (n+1) point detonation of the detonating device technical solution to detonate the n layer circumferential MEFP warhead is conducive to improving EFP flight stability, reducing EFP flying bandwidth, improving EFP kinetic energy, and improving ammunition combat effectiveness.

Cite this article

ZHANG Xinhua , ZHAO Jiaqi , SHI Jin . Research on the Technology of Simultaneously Detonating the MEFP Warhead[J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2021 , 41(3) : 88 -91 . DOI: 10.15892/j.cnki.djzdxb.2021.03.019

[an error occurred while processing this directive]
[1]
ZU X D, HUANG Z X, ZHU C S, et al. Study of detonation wave contours in EFP warhead[J]. Defence Technology, 2016, 12(2): 129-133.

DOI

[2]
崔瀚, 张国新. 定向战斗部研究现状及展望[J]. 飞航导弹, 2019(3):84-89.

[3]
FONG R, NG W, THOMPSON L, et al. Multiple explosively formed penetrator (MEFP) warhead technology development[C]//ISB. Proceedings of the 19th International Symposium on Ballistics. Orlando: ISB, 2001:1-3.

[4]
王利侠, 孙兴昀, 李刚, 等. 反装甲聚能战斗部技术现状及发展趋势[J]. 飞航导弹, 2016(8):91-96.

[5]
孔毓琦, 郭锐. MEFP式战斗部正交试验优化[J]. 机械制造与自动化, 2013(1):22-26.

[6]
陈宇, 曹红松, 王智军, 等. 一种新型防空MEFP的设计与仿真[J]. 现代防御技术, 2013, 41(2):201-206.

[7]
郑灿杰, 陈智刚, 付建平, 等. 周向整体式MEFP战斗部结构设计研究[J]. 机械设计与制造工程, 2018, 47(2):123-127.

[8]
黄寅生, 张春祥, 刘春斗, 等. 钝感延期传扩爆装置[J]. 火工品, 2001(3):28-31.

[9]
缪玉松, 李晓杰, 王小红, 等. 爆轰波碰撞的聚能效应[J]. 爆炸与冲击, 2017, 37(3):544-548.

[10]
张毅. 爆轰波对撞条件下EFP的成型[D]. 太原: 中北大学, 2015.

[11]
宋平, 李文彬, 王晓鸣, 等. 起爆方式对周向MEFP战斗部性能影响的数值仿真[J]. 弹道学报, 2019, 31(1):92-96.

DOI

[12]
SENTHIL K, IQBAL M A, CHANDEL P S, et al. Study of the constitutive behavior of 7075-T651 aluminum alloy[J]. International Journal of Impact Engineering, 2017, 108: 171-190.

[13]
HONG X W, LI W B, CHENG W, et al. Numerical simulation of the blast wave of a multilayer composite charge[J]. Defence Technology, 2020, 16: 96-106.

DOI

[14]
LI W B, WANG X M, LI W B. The effect of annular multi-point initiation on the formation and penetration of an explosively formed penetrators[J]. International Journal of Impact Engineering, 2010, 37(4): 414-424.

Outlines

/

[an error occurred while processing this directive]