钨合金球形破片侵彻陶瓷/DFRP复合靶的弹道极限速度

毛 亮 1,王 华 1,姜春兰2,李 明2

振动与冲击 ›› 2015, Vol. 34 ›› Issue (13) : 1-5.

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振动与冲击 ›› 2015, Vol. 34 ›› Issue (13) : 1-5.
论文

钨合金球形破片侵彻陶瓷/DFRP复合靶的弹道极限速度

  • 毛  亮 1,王  华 1,姜春兰2,李  明2
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Ballistic Limit Velocity of Tungsten Alloy Spherical Fragment Penetrating Ceramic/DFRP Composite Target Plates

  • Mao Liang1,Wang Hua1,Jiang Chun-lan 2,Li ,Ming2
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摘要

研究钨合金球形破片垂直侵彻陶瓷/DFRP复合靶的弹道极限速度v50。首先,利用弹道枪动加载设备,对钨合金球形破片垂直撞击不同厚度比的陶瓷/DFRP复合靶进行了实验研究,获得了弹道极限速度(v50)与复合靶面密度(AD)之间的关系;其次,根据量纲分析和相似理论,研究了钨合金球形破片侵彻陶瓷/DFRP复合靶的模拟律,并建立了弹道极限速度v50的经验关系式。经验关系的预测值与实验结果吻合较好。研究结果对破片式战斗部及轻型装甲防护结构的优化设计都具有十分重要的应用价值。

Abstract

An experimental study on the ballistic limit velocities (v50) of tungsten alloy spherical fragment penetrating Ceramic/DFRP composite target plates were carried out. Firstly, the tungsten alloy spherical fragment impacted different thickness ratio of ceramic/DFRP composite target plates were studied by using ballistic gun equipment. According to the ballistic experimental results, the relationship between ballistic limit velocity (v50) and area density (AD) of composite target was obtained. Secondly, according to the dimensional analysis method and the similarity theory, the simulation law of tungsten alloy spherical fragments penetrating ceramic/DFRP composite target plates was researched. Based on the above results, the empirical formula of ballistic limit velocity v50 was built. The predictive value using the empirical formula was consistent with the experimental results. The research results were valuable for designing fragment warhead and light armor protective structure.

关键词

钨合金球形破片 / 弹道极限速度 / 陶瓷 / 超高分子量聚乙烯纤维

Key words

Tungsten alloy spherical fragment / Ballistic limit velocity / Ceramic / Ultra-high molecular weight polyethylene fiber

引用本文

导出引用
毛 亮 1,王 华 1,姜春兰2,李 明2. 钨合金球形破片侵彻陶瓷/DFRP复合靶的弹道极限速度[J]. 振动与冲击, 2015, 34(13): 1-5
Mao Liang1,Wang Hua1,Jiang Chun-lan 2,Li,Ming2. Ballistic Limit Velocity of Tungsten Alloy Spherical Fragment Penetrating Ceramic/DFRP Composite Target Plates[J]. Journal of Vibration and Shock, 2015, 34(13): 1-5

参考文献

[1] 张震英, 戴芳. 复合材料在坦克装甲车辆上的应用[J]. 塑料, 2000, 29(3): 38-42.
   Zhang Zhenying, Dai Fang. Applications of Composite in the Armored Vehicles[J]. Plastics, 2000, 29(3): 38-42.
[2] 宜晨虹, 胡美娥, 谷岩. 93钨破片高速侵彻陶瓷/铝合金复合结构实验研究[J]. 兵器材料科学与工程, 2013, 36(3): 17-19.
   Yi Chenhong, Hu Mei’e, Gu Yan. High velocity penetration of ceramic/aluminum composite structure by 93 tungsten fragment[J]. ORDNANCE MATERIAL SCIENCE AND ENGINEERING, 2013, 36(3): 17-19.
[3] Z. Roseberg, J Tsaliah. Applying Tate’s model for the interaction of long rod projectiles with ceramic target. Int J Impact Eng, 1990, 9(2): 247-251.
[4] Raymond L. Woodward. A simple one-dimensional approach to modeling ceramic composite armour defeat. Int J Impact Eng, 1990, 9(4): 455-474.
[5] I. S. CHOCRON BENLOULO, V. SÁNCHEZ-GÁLVEZ. A new analytical model to simulate impact onto ceramic/composite armors. Int. J. Impact Engng, 1998, 21(6): 461-471.
[6] 郑震, 施楣梧, 周国泰. 超高分子量聚乙烯纤维增强复合材料及其防弹性能的研究进展[J]. 合成纤维, 2002, 31(4): 20-26.
   Zheng Zheng, Shi Meiwu, Zhou Guotai. Progress in ultrahigh molecular weight polyethylene fiber reinforced composites and its bulletproof property[J]. SFC, 2002, 31(4): 20-26.
[7] 王晓强, 朱锡, 梅志远. 高速钢质破片侵彻高强聚乙烯纤维增强塑料层合板试验研究[J]. 兵工学报, 2009, 20(12): 1574-1578.
Wang Xiaoqiang, Zhu Xi, Mei Zhiyuan. An experimental research on high velocity steel fragments perforation UHMEWPE FRP laminates[J]. Acta Armamentarii, 2009, 30(12):1574-1578.
[8] 陈长海, 朱锡, 王俊森, 等. 高速钝头弹侵彻中厚高强聚乙烯纤维增强塑料层合板的机制[J]. 复合材料学报, 2013, 30(5): 226-235.
   Chen Changhai, Zhu Xi, Wang junsen, et al. Mechanism of high-velocity blunt-nosed projectiles penetration moderately thick UHMWPE fiber reinforced plastic laminate[J]. Acta Materiae Compositae Sinca, 2013, 30(5): 226-235.
[9] 王海福, 刘志雄, 冯顺山.钢球侵彻钛合金靶板弹道极限速度[J]. 北京理工大学学报, 2003, 23(2): 162-164.
    Wang Haifu, Liu Zhixiong, Feng Shunshan. Ballistics Limit Velocity for Spherical Steel Fragments Penetrating Titanium-Alloy Target Plates[J].Transact ions of Beijing Institute of Technology, 2003, 23(2): 162-164.
[10] 徐豫新, 王树山, 伯雪飞, 等. 钨合金球形破片对低碳钢的穿甲极限[J]. 振动与冲击, 2011, 30(5): 192-195.
    Xu Yuxin, Wang Shushan, Bo Xuefei, et al. Armor-piercing ultimate of tungsten alloy spherical fragment against low-carbon steel[J]. Joural of Vibration And Shock, 2011, 30(5): 192-195.
[11] 美国陆军器材部. 终点效应设计[M]. 李景云, 习春, 于骐,译. 北京: 国防工业出版社, 1988: 218-225.
[12] 午新民. 钨合金球体对有限厚靶板侵彻的理论和实验研究[D].  北京: 北京理工大学, 1997.
    Wu Xinmin. Theoretical analysis and experimental research of tungsten alloy sphere penetrating certain thickness Target Plates[D]. Beijing: Beijing Institute of Technology, 1997.
[13] 欧阳楚萍, 徐学华, 高森烈. 相似与弹药模化[M]. 北京: 兵器工业出版社, 1995: 38-62.

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