N形装甲板抗穿甲弹侵彻性能数值模拟

杨姝,于晨,康玉彪,裴连政,亓昌,景乙桐

振动与冲击 ›› 2021, Vol. 40 ›› Issue (16) : 1-9.

PDF(1849 KB)
PDF(1849 KB)
振动与冲击 ›› 2021, Vol. 40 ›› Issue (16) : 1-9.
论文

N形装甲板抗穿甲弹侵彻性能数值模拟

  • 杨姝1,2,3,于晨1,3,康玉彪1,裴连政1,3,亓昌1,3,景乙桐1
作者信息 +

Numerical simulation of anti-penetration performance of an N-shaped armor plate against armor-piercing projectiles

  • YANG Shu1,2,3,YU Chen1,3,KANG Yubiao1,PEI Lianzheng1,3,QI Chang1,3,JING Yitong1
Author information +
文章历史 +

摘要

面向军用车辆弹道防护需求,针对一种由孔板、斜板和基板组成的N形结构装甲板,进行了其抗7.62 mm穿甲弹侵彻性能的数值模拟分析。在验证数值模拟方法有效性的基础上,仿真了子弹对N形装甲板的侵彻过程并分析了其特殊的抗弹机理;研究了弹着点位置对装甲板抗弹性能的影响,结果表明,弹着点位置的不同会导致穿甲弹的侵彻路径和剩余速度的差异;通过对比贯穿3种构型孔板后弹体的偏转角度和完整性,发现锥形孔板对弹体姿态的改变和破坏更大;通过多组仿真得到了锥形孔N形装甲板的弹道极限。结果表明,与等质量均质钢板相比,锥形孔N形装甲板的弹道极限提高了12.5%。

Abstract

Aiming at the ballistic protection requirements of military vehicles, an N-shaped structural armor consisting of a perforated plate, an inclined plate, and a substrate was proposed and its anti-penetration performance against a 7.62 mm armor-piercing projectile was analyzed through numerical simulations.Firstly, on the basis of validating the effectiveness of the numerical simulation method, the penetration process of the projectile to the N-shaped armor plate was simulated and its special anti-ballistic mechanism was analyzed.Secondly, the influence of the impact position on the ballistic resistance of the armor plate was studied.The results show that different impact positions will lead to different penetration paths and different residual speed of the armor-piercing projectile.Then, by comparing the deflection angle and the integrity of the projectile after penetrating the perforated plate with three types of bore configurations, it was found that the conical bore plate changes most the attitude of the projectile as well as destroys it.Finally, the ballistic limit of the conical bore N-shaped armor plate was obtained through multiple sets of simulations.The results show that the ballistic limit of the conical bore N-shaped armor plate was increased by 12.5% compared with that of the homogeneous steel plate of the same weight.

关键词

弹道防护 / 装甲板 / 穿甲弹 / 抗侵彻机理 / 弹着点 / 弹道极限

Key words

ballistic protection / armor plate / armor-piercing projectile / anti-penetration mechanism / impact point / ballistic limit

引用本文

导出引用
杨姝,于晨,康玉彪,裴连政,亓昌,景乙桐. N形装甲板抗穿甲弹侵彻性能数值模拟[J]. 振动与冲击, 2021, 40(16): 1-9
YANG Shu,YU Chen,KANG Yubiao,PEI Lianzheng,QI Chang,JING Yitong. Numerical simulation of anti-penetration performance of an N-shaped armor plate against armor-piercing projectiles[J]. Journal of Vibration and Shock, 2021, 40(16): 1-9

参考文献

[1]JENA P K, MISHRA B, RAMESHBABU M, et al.Effect of heat treatment on mechanical and ballistic properties of a high strength armour steel[J].International Journal of Impact Engineering, 2010,37(3): 242-249.
[2]BRVIK T, DEY S, CLAUSEN A H.Perforation resistance of five different high-strength steel plates subjected to small-arms projectiles[J].International Journal of Impact Engineering, 2009,36(7): 948-964.
[3]张自强.均质装甲钢倾角效应的试验研究[J].兵器材料科学与工程, 1995,18(4): 31-38.
ZHANG Ziqiang.Experimental study of obliquity effect for homogenous armor steel[J].Ordnance Material Science and Engineering, 1995,18(4): 31-38.
[4]黄雪峰, 王伟力, 樊壮卿, 等.不同倾角侵彻下半穿甲战斗部结构件受力仿真分析[J].工程爆破, 2013,19(6): 4-8.
HUANG Xuefeng, WANG Weili, FAN Zhuangqing, et al.Simulation on stress in internal component member of semi-armor-piercing warhead during penetration at vary inclinations[J].Engineering Blasting, 2013,19(6): 4-8.
[5]ROSENBERG Z, ASHUACH Y, YESHURUN Y, et al.The main mechanisms for defeating AP projectiles, long rods and shaped charge jets[J].International Journal of Impact Engineering, 2009,36(4): 588-596.
[6]PARIS V, WEISS A, VIZEL A, et al.Fragmentation of armor piercing steel projectiles upon oblique perforation of steel plates[C]//DYMAT 2012 10th International Conference on the Mechanical and Physical Behaviour of Materials under Dynamic Loading.Freiburg:EDP Sciences, 2012.
[7]WEN X Z, HUANG J, KE F W, et al.Debris dispersion effect in N-shape configuration[J].Acta Astronautica, 2014,104(1): 173-178.
[8]TRASI Y, BEN-MOSHE D, ROSENBERG G.An armor assembly for armored vehicles: European Patent 0209221 A1[P].1987-01-21.
[9]BALOS S, GRABULOV V, SIDJANIN L, et al.Geometry, mechanical properties and mounting of perforated plates for ballistic application[J].Materials & Design, 2010,31: 2916-2924.
[10]RADISAVLJEVIC I, BALOS S, NIKACEVIC M, et al.Optimization of geometrical characteristics of perforated plates[J].Materials & Design, 2013,49: 81-89.
[11]BURIAN W, Z•OCHOWSKI P, GMITRZUK M, et al.Protection effectiveness of perforated plates made of high strength steel[J].International Journal of Impact Engineering, 2019,126: 27-39.
[12]王建波, 闫慧敏, 范秉源, 等.弹着点对多孔钢板抗弹性能影响的数值模拟[J].兵器材料科学与工程, 2010,33(6): 73-75.
WANG Jianbo, YAN Huimin, FAN Bingyuan, et al.Numerical simulation analysis about the influence of the hitting position on the ballistic performance of the multi-hole steel plate[J].Ordnance Material Science and Engineering, 2010,33(6): 73-75.
[13]胡静, 崔亚男, 王轩, 等.单层金属板对刚性弹体抗撞击特性的影响因素研究[J].振动与冲击, 2017,36(24): 35-43.
HU Jing, CUI Yanan, WANG Xuan, et al.Influences of target plate and rigid projectile on their anti-impact characteristics[J].Journal of Vibration and Shock, 2017,36(24): 35-43.
[14]秦庆华, 崔天宁, 施前, 等.结构金属装甲抗弹能力的数值模拟[J].高压物理学报, 2018,32(5): 133-141.
QIN Qinghua, CUI Tianning, SHI Qian, et al.Numerical study on ballistic resistance of metal perforated armor to projectile impact[J].Chinese Journal of High Pressure Physics, 2018,32(5): 133-141.
[15]WIS'NIEWSKI A, Z•OCHOWSKI P.Add-on passive armour for light armoured vehicles protection[J].Problemy Techniki Uzbrojenia, 2013,42(125): 17-24.
[16]FRAS T, MURZYN A, PAWLOWSKI P.Defeat mechanisms provided by slotted add-on bainitic plates against small-calibre 7.62 mm× 51 AP projectiles[J].International Journal of Impact Engineering, 2017,103: 241-253.
[17]ALI M W, MUBASHAR A, UDDIN E, et al.An experimental and numerical investigation of the ballistic response of multi-level armour against armour piercing projectiles[J].International Journal of Impact Engineering, 2017,110: 47-56.
[18]KILI N, EKICI B.Ballistic resistance of high hardness armor steels against 7.62 mm armor piercing ammunition[J].Materials & Design, 2013,44: 35-48.
[19]KILI N, BEDIR S, ERDIK A, et al.Ballistic behavior of high hardness perforated armor plates against 7.62 mm armor piercing projectile[J].Materials & Design, 2014,63: 427-438.
[20]KILI N, EKICI B, BEDIR S.Optimization of high hardness perforated steel armor plates using finite element and response surface methods[J].Mechanics of Advanced Materials and Structures, 2017,24(7): 615-624.
[21]CHOCRON S, ANDERSON C E, Jr, GROSCH D J, et al.Impact of the 7.62 mm APM2 projectile against the edge of a metallic target[J].International Journal of Impact Engineering, 2001,25(5): 423-437.
[22]HAQUE B Z, KEARNEY M M, GILLESPIE J W, Jr.Advances in protective personnel and vehicle armors[J].Recent Patents on Materials Science, 2012,5(2): 105-136.

PDF(1849 KB)

Accesses

Citation

Detail

段落导航
相关文章

/