基于空中机动目标拦截的制导和引信及战斗部一体化设计研究

汪金奎;娄文忠;刘伟桐;苏子龙

兵工学报 ›› 2020, Vol. 41 ›› Issue (4) : 649-655.

兵工学报 ›› 2020, Vol. 41 ›› Issue (4) : 649-655. DOI: 10.3969/j.issn.1000-1093.2020.04.004
论文

基于空中机动目标拦截的制导和引信及战斗部一体化设计研究

  • 汪金奎, 娄文忠, 刘伟桐, 苏子龙
作者信息 +

Integrated Design of Guidance Law, Fuze and Warhead for Maneuvering Target Interception

  • WANG Jinkui, LOU Wenzhong, LIU Weitong, SU Zilong
Author information +
文章历史 +

摘要

为实现对空间机动目标的可靠拦截,研究防空导弹制导盲区情况下常规破片战斗部的制导和引信及战斗部一体化设计方法。在已知目标最大机动能力作为先验信息条件下,通过目标最大机动能力估计制导盲区内目标潜在运动的状态集合;建立破片飞散的数学模型,根据目标状态集合和破片飞散特性求解防空导弹最佳交会状态和引信最佳起爆时间;采用Gauss伪普法,以末端弹目相对位置、弹目视线角和速度矢量夹角作为约束,求解导弹实时最优控制输入,使防空导弹到达最佳拦截位置。仿真分析结果表明,所提制导和引信及战斗部一体化设计方法能够实现引信最佳起爆控制和目标可靠拦截,对战斗部设计提供了依据。

Abstract

An integrated design method of guidance law, fuze and warhead for conventional fragment warhead is studied to achieve the reliable interception of high maneuvering target in space in the presence of guidance blind zone of air defense missile. Under the condition that the maximum maneuverability of target is known as prior information, the potential motion state set of target in blind guidance zone is estimated from maximum maneuverability of target, a mathematical model of fragment dispersion is established, and the optimal intersection state of air defense missile and the optimal detonate time of fuze are solved according to the target state and the characteristics of fragment dispersion. The Gauss pseudo-spectral method is used to solve the real-time optimal control problem of missile with the constraints of the relative position of terminal missile and target, the line-of-sight angle of missile and the angle of velocity vector, so that the air defense missile can reach the optimal interception state. The simulation analysis shows that the integrated design method of guidance law, fuze and warhead can realize the optimal control of fuze and the reliable interception of target, and provide the basis for warhead design. Key

关键词

防空导弹 / 目标拦截 / 制导和引信及战斗部一体化 / 引信与战斗部配合 / Gauss伪普法

Key words

airdefencemissile / targetinterception / guidanceintegratedfuzing / fuze-warheadcoordination / Gausspseudo-generalmethod

引用本文

导出引用
汪金奎, 娄文忠, 刘伟桐, 苏子龙. 基于空中机动目标拦截的制导和引信及战斗部一体化设计研究. 兵工学报. 2020, 41(4): 649-655 https://doi.org/10.3969/j.issn.1000-1093.2020.04.004
WANG Jinkui, LOU Wenzhong, LIU Weitong, SU Zilong. Integrated Design of Guidance Law, Fuze and Warhead for Maneuvering Target Interception. Acta Armamentarii. 2020, 41(4): 649-655 https://doi.org/10.3969/j.issn.1000-1093.2020.04.004

基金

武器装备预先研究项目(6141B021310)

参考文献



[1]温银放, 王琼. 空空导弹制导引信一体化信息融合技术研究[J]. 计算机仿真, 2016, 33(4):67-70,90.
WEN Y F, WANG Q. Research on GIF information fusion technology of air-to air missile[J]. Computer Simulation, 2016, 33(4): 67-70,90.(in Chinese)
[2]王萱, 邓甲昊, 李辉, 等. 交会末段制导引信一体化系统射频成像目标轮廓重构方法[J]. 兵工学报, 2015, 36(9):1624-1631.
WANG X, DENG J H, LI H,et al. Terminal target contour reconstruction algorithm based on RF imaging for GIF[J]. Acta Armamentarii, 2015, 36(9):1624-1631. (in Chinese)
[3]CHOPPERK, JAEGER H, STEPHENS L, et al. Guidance integrated fuzing analysis and simulation[C]∥Proceedings of the 1st IEEE Conference on Control Applications. Dayton, OH, US: IEEE, 1992: 750-755.
[4]WANG Y, SONG W D, FANG D, et al. Guidance and control design for a class of spin-stabilized projectiles with a two-dimensional trajectory correction fuze[J]. International Journal of Aerospace Engineering, 2015:ID908304.
[5]黄建雄, 李芳, 李雪平. 横滚-俯仰式红外成像导引头盲区跟踪控制方法研究[J]. 上海航天, 2016(3): 74-79.
HUANG J X, LI F, LI X P. Research on tracking blind zone and control method for roll-pitch seeker[J]. Aerospace Shanghai, 2016(3): 74-79. (in Chinese)
[6]郭玉甫, 张平. 极坐标导引头基于全像平面的盲区跟踪策略[J]. 弹箭与制导学报, 2014, 34(1):41-45.
GUO Y F, ZHANG P. Strategy for target tracking in blind zone of polar coordinate seeker based on full-map plane[J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2014, 34(1):41-45. (in Chinese)
[7]韩静茹, 吴炎烜, 杨喆, 等. 针对机动目标的防空导弹引战配合建模与仿真[J]. 兵工学报, 2017, 38(增刊1):205-209.
HAN J R, WU Y X, YANG Z, et al. Modeling and simulation of fuze-warhead matching of air-defense missile for mobile target[J]. Acta Armamentarii, 2017, 38(S1):205-209. (in Chinese)
[8]孔德浩, 路明, 苏益德. 多光束周视激光引信与定向战斗部配合研究[J]. 首届兵器工程大会论文集. 重庆:中国兵工学会, 2017:951-956.
KONG D H, LU M, SU Y D. Research on the coordination of multi-beam cyclic laser fuze and directional warhead[C]∥Proceedings of the 1st Weapon Engineering Conference. Chongqing: China Ordnance Society, 2017:951-956. (in Chinese)
[9]邢立旦, 陈万春, 殷兴良. 有终点交会角要求的拦截弹拦截导引设计[J]. 飞行力学, 2007, 25(4): 37-39.
XING L D, CHEN W C, YIN X L. Interception guidance design for interceptor with terminal aspect angle constraint[J]. Flight Dynamics, 2007, 25(4): 37-39. (in Chinese)

[10]徐兴元, 蔡远利. 具有碰撞角约束的微分对策导引律研究[J]. 弹箭与制导学报, 2015, 35(4): 1-4.
XU X Y, CAI Y L. Differential game guidance law with impact angle constraint[J]. Journal of Projectiles, Rockets, Missiles and Guidance, 2015, 35(4): 1-4. (in Chinese)
[11]SHINH S, PIET L H, TSOURDOS A, et al. Membership set-based mid course guidance: application to maneuvering target interception[J]. IFAC Proceedings Volumes, 2011, 44(1): 3903-3908.
[12]YOON M G. Relative circular navigation guidance for three-dimensional impact angle control problem[J]. Journal of Aerospace Engineering, 2010, 23(4): 300-308.
[13]BENSON D A, HUNTINGTON G T, THORVALDSEN T P, et al. Direct trajectory optimization and costate estimation via an orthogonal collocation method[J]. Journal of Guidance, Control, and Dynamics, 2006, 29(6):1435-1440.
[14]谭多望, 温殿英, 张忠斌, 等. 球形破片长距离飞行时速度衰减规律研究[J]. 高压物理学报, 2002, 16(4):271-275.
TAN D W, WEN D Y, ZHANG Z B, et al. Long distance flight performances of spherical fragments[J]. Chinese Journal of High Pressure Physics, 2002, 16(4):271-275. (in Chinese)
[15]杨良, 郑宗贵, 徐衡, 等. 多约束在线高斯伪谱末制导方法[J]. 弹道学报, 2014, 26(3): 98-103.
YANG L, ZHENG Z G, XU H, et al. Onboard gauss pseudo spectral terminal guidance law with multiple constraints[J]. Journal of Ballistics, 2014, 26(3): 98-103. (in Chinese)







第41卷第4期2020年4月
兵工学报ACTA ARMAMENTARII
Vol.41No.4Apr.2020

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