论文:2021,Vol:39,Issue(3):633-640
引用本文:
季军亮, 汪民乐, 李炜, 张敬卓. 多层反导协同作战兵力需求研究[J]. 西北工业大学学报
JI Junliang, WANG Minle, LI Wei, ZHANG Jingzhuo. Research on force demand of multi-layer anti-missile coorperative combat[J]. Northwestern polytechnical university

多层反导协同作战兵力需求研究
季军亮1,2, 汪民乐1, 李炜2, 张敬卓2
1. 火箭军工程大学 基础部, 陕西 西安 710025;
2. 空军工程大学 防空反导学院, 陕西 西安 710051
摘要:
为探寻一种科学的多层反导协同作战兵力需求分析方法,界定了多层反导协同作战兵力需求的内涵,系统阐述了作战单元、火力层次、航路捷径、突击波次等相关概念,在明确多层反导协同作战兵力需求研究思路的基础上,构建了多层反导协同作战拦截毁伤模型,提出了反导火力重叠需求计算方法,给出了单火力层次反导作战单元最小可接受数量及多层反导协同作战总兵力需求计算模型,并设置了反导作战实例,运用LINGO软件对实例进行求解,充分印证了所采用方法的合理性以及各反导火力层次在作战中的地位作用。
关键词:    多层反导    协同作战    兵力需求    航路捷径    毁伤概率   
Research on force demand of multi-layer anti-missile coorperative combat
JI Junliang1,2, WANG Minle1, LI Wei2, ZHANG Jingzhuo2
1. Basic Department, Rocket Force University of Engineering, Xi'an 710025, China;
2. Air and Missile Defense College, Air Force Engineering University, Xi'an 710051, China
Abstract:
In order to find a scientific analysis method of anti-missile force demand, the connotation of force demand of multi-layer anti-missile cooperative combat was first defined, and the relative concepts such as combat unit, firepower layer, route shortcut and assault wave were described. Then, an intercept damage model of multi-layer anti-missile coorperative combat was built. And the computing method of anti-missile firepower overlaping demand was proposed, the computing method of minimum acceptable quantity of single firepower layer anti-missile combat unit and the total force demand of multi-layer anti-missile cooperative combat were given based on the studied thinking of force demand. At last, the example of anti-missile combat was set up, which was solved with LINGO software, and it confirmed the rationality of the proposed method and the effect of each anti-missile fire layer.
Key words:    multi-layer anti-missile    cooperative combat    force demand    route shortcut    damage probability   
收稿日期: 2020-10-09     修回日期:
DOI: 10.1051/jnwpu/20213930633
通讯作者:     Email:
作者简介: 季军亮(1983-),火箭军工程大学博士研究生,主要从事地空导弹作战应用、军事运筹学研究。
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参考文献:
[1] 陈杰生. 防空学[M]. 北京:科学出版社,2017 CHEN Jiesheng. Air defense[M]. Beijing:Science Press, 2017(in Chinese)
[2] 陈鸿猷,郭有全,王颖龙. 中国人民解放军空军地空导弹兵战术学[M]. 北京:解放军出版社,2016 CHEN Hongyou, GUO Youquan, WANG Yinglong. Tactic science of PLA air force ground to air missile troops[M]. Beijing:PLA Press,2016(in Chinese)
[3] 郭浩波,王颖龙. 兵力需求的运作机理研究[J]. 电光与控制, 2007(2):154-158 GUO Haobo, WANG Yinglong. On operational mechanism of military strength demand[J]. Electronics Optics & Control, 2007(2):154-158(in Chinese)
[4] 马新星,滕克难,侯学隆. 岛礁防空兵力需求分析[J]. 指挥控制与仿真,2017(2):1-4 MA Xinxing, TENG Kenan, HOU Xuelong. Troops demand analysis of reef defense[J]. Command Control & Simulation, 2017(2):1-4(in Chinese)
[5] 宁伟华,李海龙,田新华,等. 基于马尔柯夫链的地面防空兵兵力需求分析[J]. 电光与控制,2006(2):57-60 NING Weihua, LI Hailong, TIAN Xinhua, et al. Assessing multilayer air defense options based on Markov chain[J]. Electronics Optics & Control, 2006(2):57-60(in Chinese)
[6] 马新星,滕克难,侯学隆. 海军要地防空兵力需求分析[J]. 兵工自动化,2019(1):5-9 MA Xinxing, TEMG Kenan, HOU Xuelong. Troops demand analysis of naval point area air defense[J]. Ordnance Industry Automation, 2019(1):5-9(in Chinese)
[7] 苗李达,王宗杰,孙守福. 武装直升机编队对地攻击兵力需求计算模型研究[J]. 指挥控制与仿真,2017(3):16-18 MIAO Lida, WANG Zongjie, SUN Shoufu. Investigation on the demand for armed attack force of armed helicopter formation[J]. Command Control & Simulation,2017(3):16-18(in Chinese)
[8] 潘俊杰,许瑞明,刘双双. 基于决策偏好的联合火力打击兵力需求优化方法究[J]. 指挥控制与仿真,2018(5):18-20 PAN Junjie, XU Ruiming, LIU Shuangshuang. Force demand method for joint fires attack based on decision-making orientated optimization analysis[J]. Command Control & Simulation, 2018(5):18-20(in Chinese)
[9] 卢盈齐,张小宽. 末段高层反导武器系统掩护能力分析[J]. 航天控制,2014(2):41-45 LU Yingqi, ZHANG Xiaokuan. Covering capability analysis of terminal high altitude ATBM System[J]. Aerospace Control, 2014(2):41-45(in Chinese)
[10] 周伟,吕琳琳. 俄S500反导系统与美THAAD系统比较[J]. 国外核武器动态参考,2016(5):21-29 ZHOU Wei, LYU Linlin. Russia S500 anti-missile system compared to the USA THAAD system[J]. Dynamic Reference of Foreign Nuclear Weapons, 2016(5):21-29(in Chinese)
[11] JAISWAL N K. Military operations research:quantitativc decision making[M]. Kluwer Academic Publishers, 2018
[12] 马拴柱,刘飞,曹泽阳. 地空导弹射击学[M]. 西安:西北工业大学出版社, 2017 MA Shuanzhu, LIU Fei, CAO Zeyang. Surface to air missile shooting[M]. Xi'an:Northwest Polytechnical University Press, 2017(in Chinese)
[13] 余滨,张耀鸿,余博超. 军事运筹学方法与应用[M]. 长沙:国防科技大学出版社, 2018 YU Bin, ZHANG Yaohong, YU Bochao. Military operational research method and application[M]. Changsha:National Defense University of Science and Technology Press, 2018(in Chinese)
[14] ROBERT V H, JOSEPH W M K, ALLEN T C. Introduction to Mathematical Statistics[M]. 7th Edition. New York:New York the Macmillan Company, 2017
[15] 刘继忠,王晓东,高磊, 等. 弹道导弹[M]. 北京:国防工业出版社.2015 LIU Jizhong, WANG Xiaodong, GAO Lei, et al. Ballistic missile[M]. Beijing:National Defense Industry Press, 2015(in Chinese)
[16] 马艳波,董露. 美地基中段防御系统能力评析及未来发展[J]. 导弹防御,2017(3):13-22 MA Yanbo, DONG Lu. Ability analysis and development of the USA GMD system[J]. Missile Defense, 2017(3):13-22(in Chinese)
[17] JASON Sherman. MDA plans to move thaad, patriot testing to alaska from hawaii[J]. Inside the Pentagon's Inside Missile Defense, 2017, 23(3):1-8
[18] JASON Sherman. MDA conducts simulated exercise featuring THAAD and PATRIOT[J]. Inside the Pentagon's Inside Missile Defense,2018, 24(8):26-42
[19] EGGERT John M. Patriot advanced capability-3 missile segment enhancement (PAC-3 MSE)[R].AD.2015
[20] MACHI Vivienne. Missile defense market poised for growth[J]. National Defense,2017(760):8-9
[21] Lockheed Martin. Next generation aegis ballistic missile defense system successfully engages medium range ballistic missile target[J]. Defense & Aerospace Week,2017(1):1-42