TY - GEN
T1 - Research on High-Velocity Perforation Characteristics of Elliptical Cross-Section Truncated Ogive Projectile
AU - Deng, Ximin
AU - Dong, Heng
AU - Wang, Hao
AU - Wu, Haijun
AU - Huang, Fenglei
N1 - Publisher Copyright:
© 2024, The Author(s), under exclusive license to Springer Nature Switzerland AG.
PY - 2024
Y1 - 2024
N2 - With the development of the hypersonic weapon system, the non-circular cross-section projectile with more space utilization has attracted extensive attention. The high-velocity penetration mechanism of the non-circular cross-section projectile is a crucial issue that must be solved. Based on the truncated conical head structure of a typical anti-ship warhead and the elliptical section projectile shape, the resistance characteristics of the projectile and the damage mechanism of the metal sheet are studied by numerical simulation. The load of the projectile is divided into two parts: shear punching resistance and ductile enlargement resistance. The results show that the elliptical cross-section truncated ogive projectile (ETOP) penetrating the metal sheet can be divided into the head and body penetration stages. In the head invasion stage, the failure mode of the sheet is decomposed into the shear plugging caused by the truncated cone platform and the ductility enlargement of the curved surface of the head. Under high-velocity impact, the damage to the sheet caused by the ogive/blunt projectile with the elliptic-section is different from that caused by low-velocity impact. When the ogive projectile penetrates the sheet, ductile enlargement failure occurs. When a blunt projectile impacts the sheet at high velocity, the coupled failure mode of shear punching and ductile enlargement occurs. The resistance of the elliptical cross-section projectile is the same as that of the circular cross-section projectile with the same area. The difference is that the asymmetric structure of the elliptical cross-section leads to non-uniform load distribution.
AB - With the development of the hypersonic weapon system, the non-circular cross-section projectile with more space utilization has attracted extensive attention. The high-velocity penetration mechanism of the non-circular cross-section projectile is a crucial issue that must be solved. Based on the truncated conical head structure of a typical anti-ship warhead and the elliptical section projectile shape, the resistance characteristics of the projectile and the damage mechanism of the metal sheet are studied by numerical simulation. The load of the projectile is divided into two parts: shear punching resistance and ductile enlargement resistance. The results show that the elliptical cross-section truncated ogive projectile (ETOP) penetrating the metal sheet can be divided into the head and body penetration stages. In the head invasion stage, the failure mode of the sheet is decomposed into the shear plugging caused by the truncated cone platform and the ductility enlargement of the curved surface of the head. Under high-velocity impact, the damage to the sheet caused by the ogive/blunt projectile with the elliptic-section is different from that caused by low-velocity impact. When the ogive projectile penetrates the sheet, ductile enlargement failure occurs. When a blunt projectile impacts the sheet at high velocity, the coupled failure mode of shear punching and ductile enlargement occurs. The resistance of the elliptical cross-section projectile is the same as that of the circular cross-section projectile with the same area. The difference is that the asymmetric structure of the elliptical cross-section leads to non-uniform load distribution.
KW - Elliptical cross section projectile
KW - Enlargement
KW - Perforation
KW - Plugging
UR - http://www.scopus.com/inward/record.url?scp=85180624966&partnerID=8YFLogxK
U2 - 10.1007/978-3-031-42987-3_27
DO - 10.1007/978-3-031-42987-3_27
M3 - Conference contribution
AN - SCOPUS:85180624966
SN - 9783031429866
T3 - Mechanisms and Machine Science
SP - 379
EP - 393
BT - Computational and Experimental Simulations in Engineering - Proceedings of ICCES 2023—Volume 2
A2 - Li, Shaofan
PB - Springer Science and Business Media B.V.
T2 - 29th International Conference on Computational and Experimental Engineering and Sciences, ICCES 2023
Y2 - 26 May 2023 through 29 May 2023
ER -