Enhanced structural damage behavior of liquid-filled tank by reactive material projectile impact

被引:0
|
作者
Jianwen Xie [1 ]
Yuanfeng Zheng [1 ]
Zhenyang Liu [1 ]
Chengzhe Liu [1 ]
Aoxin Liu [1 ]
Pengwan Chen [1 ]
Haifu Wang [1 ]
机构
[1] State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology
基金
国家自然科学基金重点项目;
关键词
D O I
暂无
中图分类号
TJ410 [一般性问题];
学科分类号
摘要
A series of ballistic experiments were performed to investigate the damage behavior of high velocity reactive material projectiles(RMPs) impacting liquid-filled tanks, and the corresponding hydrodynamic ram(HRAM) was studied in detail. PTFE/Al/W RMPs with steel-like and aluminum-like densities were prepared by a pressing/sintering process. The projectiles impacted a liquid-filled steel tank with front aluminum panel at approximately 1250 m/s. The corresponding cavity evolution characteristics and HRAM pressure were recorded by high-speed camera and pressure acquisition system, and further compared to those of steel and aluminum projectiles. Significantly different from the conical cavity formed by the inert metal projectile, the cavity formed by the RMP appeared as an ellipsoid with a conical front. The RMPs were demonstrated to enhance the radial growth velocity of cavity, the global HRAM pressure amplitude and the front panel damage, indicating the enhanced HRAM and structural damage behavior. Furthermore, combining the impact-induced fragmentation and deflagration characteristics, the cavity evolution of RMPs under the combined effect of kinetic energy impact and chemical energy release was analyzed. The mechanism of enhanced HRAM pressure induced by the RMPs was further revealed based on the theoretical model of the initial impact wave and the impulse analysis.Finally, the linear correlation between the deformation-thickness ratio and the non-dimensional impulse for the front panel was obtained and analyzed. It was determined that the enhanced near-field impulse induced by the RMPs was the dominant reason for the enhanced structural damage behavior.
引用
收藏
页码:211 / 229
页数:19
相关论文
共 50 条
  • [1] Enhanced structural damage behavior of liquid-filled tank by reactive material projectile impact
    Xie, Jianwen
    Zheng, Yuanfeng
    Liu, Zhenyang
    Liu, Chengzhe
    Liu, Aoxin
    Chen, Pengwan
    Wang, Haifu
    DEFENCE TECHNOLOGY, 2024, 31 : 211 - 229
  • [2] Numerical simulation of liquid-filled tank response to projectile impact
    School of Aeronautics, Northwestern Polytechnical University, Xi'an 710072, China
    J. Mech. Strength, 2007, 1 (143-147):
  • [3] Damage resulting from a high-speed projectile impacting a liquid-filled metal tank
    Borg, JP
    Cogar, JR
    Tredway, S
    Yagla, J
    Zwiener, M
    COMPUTATIONAL METHODS AND EXPERIMENTAL MEASUREMENTS X, 2001, 3 : 889 - 902
  • [4] Growth model of cavity generated by the projectile impacting liquid-filled tank
    Bei-lei Zhao
    Ji-guang Zhao
    Cun-yan Cui
    Yong-sheng Duan
    Yan Wang
    Defence Technology, 2020, 16 (03) : 609 - 616
  • [5] A LIQUID-FILLED PROJECTILE SIMULATOR
    RICHARDS, PJ
    JOURNAL OF PHYSICS E-SCIENTIFIC INSTRUMENTS, 1983, 16 (03): : 236 - 240
  • [6] Growth model of cavity generated by the projectile impacting liquid-filled tank
    Zhao, Bei-lei
    Zhao, Ji-guang
    Cui, Cun-yan
    Duan, Yong-sheng
    Wang, Yan
    DEFENCE TECHNOLOGY, 2020, 16 (03) : 609 - 616
  • [7] Enhanced ignition behavior of reactive material projectiles impacting fuel-filled tank
    Shu-bo Liu
    Ying Yuan
    Yuan-feng Zheng
    Chao Ge
    Hai-fu Wang
    Defence Technology, 2019, 15 (04) : 533 - 540
  • [8] Enhanced ignition behavior of reactive material projectiles impacting fuel-filled tank
    Liu, Shu-bo
    Yuan, Ying
    Zheng, Yuan-feng
    Ge, Chao
    Wang, Hai-fu
    DEFENCE TECHNOLOGY, 2019, 15 (04) : 533 - 540
  • [9] NONLINEAR-ANALYSIS OF LIQUID-FILLED TANK
    LIU, WK
    LAM, D
    JOURNAL OF ENGINEERING MECHANICS-ASCE, 1983, 109 (06): : 1344 - 1357
  • [10] Ignition Effect of the Fuel-Filled Tank Caused by the Reactive Projectile Impact
    Xu, F. Y.
    Wang, H. F.
    COMBUSTION EXPLOSION AND SHOCK WAVES, 2021, 57 (03) : 372 - 377