防务技术2024,Vol.33Issue(3) :295-307.DOI:10.1016/j.dt.2023.05.022

Ballistic performance of spherical fragments penetrating PCrNi3MoV target plates

Dou Hong Wenbin Li Yu Zheng Yiming Li Ning Jiang Kebin Zhang
防务技术2024,Vol.33Issue(3) :295-307.DOI:10.1016/j.dt.2023.05.022

Ballistic performance of spherical fragments penetrating PCrNi3MoV target plates

Dou Hong 1Wenbin Li 1Yu Zheng 1Yiming Li 1Ning Jiang 1Kebin Zhang1
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作者信息

  • 1. Ministerial Key Laboratory of ZNDY,Nanjing University of Science and Technology,Nanjing,China
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Abstract

PCrNi3MoV steel is a medium-carbon,low-alloy quenched and tempered steel that finds its applications in military gun barrels due to the high wear resistance and ablation resistance.To study the penetration and failure modes of PCrNi3MoV plates impacted by tungsten spheres,tungsten spheres of various di-ameters(5 mm,8 mm,and 10 mm)were used to impact PCrNi3MoV steel plates with thicknesses of 6 mm,9 mm,and 14 mm.The penetration performance of the spheres was analyzed for different ve-locities,and the ultimate penetration velocity of the plate was obtained.It was found that the primary failure modes of the PCrNi3MoV plate were compression pitting failure and shear failure.Using the dimensional analysis method,a relationship between the bulge height of the steel plate and the fragment velocity,an equation for the ultimate penetration velocity,and a relationship between the target penetration energy and the fragment velocity were obtained.Then,a projectile-target action index was proposed to describe the process of tungsten spheres with different velocities impacting target plates.The results suggested that under the same thickness of the target plate,a larger-diameter fragment required more kinetic energy to obtain the same ultimate penetration effect as a smaller-diameter fragment.The equations obtained through dimensional analysis predicted values that agreed well with experimental values,indicating that these equations can be applied to engineering applications.

Key words

Impact damage/Ultimate penetration velocity/Bulge height/Target penetration energy/Failure modes

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出版年

2024
防务技术
中国兵工学会

防务技术

CSTPCD
影响因子:0.358
ISSN:2214-9147
参考文献量32
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