小型化脉冲激光引信发射系统电磁辐射干扰研究
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  • 英文篇名:Electromagnetic Radiation Interference of Miniaturized Pulse Laser Fuze Emission System
  • 作者:何勇 ; 张祥金
  • 英文作者:He Yong;Zhang Xiangjin;Nanjing University of Science and Technology;
  • 关键词:激光 ; 瞬时放电 ; 电磁干扰 ; 屏蔽
  • 英文关键词:laser;;instantaneous discharge;;electromagnetic interference;;shield
  • 中文刊名:YYJG
  • 英文刊名:Applied Laser
  • 机构:南京理工大学机械工程学院;
  • 出版日期:2019-02-15
  • 出版单位:应用激光
  • 年:2019
  • 期:v.39
  • 基金:武器装备预先研究资助项目(项目编号:41419050202);; 国防科技资助项目(项目编号:0106001)
  • 语种:中文;
  • 页:YYJG201901024
  • 页数:8
  • CN:01
  • ISSN:31-1375/T
  • 分类号:153-160
摘要
小型化是当前脉冲激光近炸引信的发展趋势。小型化不仅需要考虑结构过载的影响,同时由于结构小型化而引发空间电磁干扰问题不可忽略。基于小型化背景,建立脉冲激光发射系统理论模型,利用Comsol软件仿真发射系统瞬时放电周边辐射。分析了发射系统脉冲大电流对探测系统的电磁辐射干扰,同时基于电磁屏蔽机理提出抗电磁辐射干扰措施。实验与仿真结果表明,激光发射系统瞬时放电会产生极大的电磁辐射干扰,采用45号钢组合屏蔽机制,能够有效的抑制电磁干扰。
        The miniaturization is the current development trend of pulsed laser proximity fuze. In addition to considering the impact of structural overload, the problem of space electromagnetic interference caused by the miniaturization of the structure can not be ignored. Based on the miniaturization background, a theoretical model of pulsed laser emission system is established, and the instantaneous discharge peripheral radiation is simulated by Comsol software. Analyzing the electromagnetic radiation interference on the detection system caused by the pulse current of the emission system, it proposes the anti-electromagnetic radiation interference measures based on the electromagnetic shielding mechanism. The experimental and simulation results show that the instantaneous discharge of the laser emission system will produce great electromagnetic radiation interference effectively suppressed by the 45 steel combined shielding mechanism.
引文
[1] 徐伟,陈钱,顾国华,等.小型化激光近炸引信技术研究[J].兵工学报,2011,32(10):1212-1216.
    [2] 徐孝彬,张合,张祥金,等.激光周向探测小型化发射技术[J].光子学报,2016,45(3):28-33.
    [3] 韩威,郑翔,赵柏秦.激光探测小型化收发系统设计[J].红外与激光工程,2017,46(9):62-68.
    [4] 高建军,梁成.单模半导体激光器等效电路模型[J].半导体情报,1996(2):22-26.
    [5] 冯颖,张合,张祥金.脉冲激光引信发射接收模块的电磁干扰[J].强激光与粒束,2011,23(1):249-254.