TY - JOUR
T1 - Ballistic impact behavior of commercially pure titanium with gradient nanostructure against projectiles with different nose shapes
AU - Guo, Yansong
AU - Ge, Yanxin
AU - Deng, Lisha
AU - Wang, Chenguang
AU - Zhou, Changqing
AU - Gao, Tianze
AU - Bataev, Ivan A.
AU - Fan, Hang
AU - Zhou, Qiang
AU - Chen, Pengwan
AU - Jia, Bin
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/8
Y1 - 2025/8
N2 - With the continuous development of lightweight armor, there is an increasing demand for titanium and its alloys with enhanced mechanical properties and ballistic performance. The introducing of gradient nanostructure (GNS) offers a promising approach to enhance comprehensive mechanical properties and ballistic performance of titanium and its alloys. In the present research, GNS commercially pure titanium (CP Ti) was prepared using explosion hardening (EH) technique. Both experimental tests and numerical simulations were conducted to investigate ballistic performance of GNS CP Ti. Projectiles with different head shapes were used to perforate GNS CP Ti targets at different velocities, and ballistic curves were fitted. The microstructure of the projectile holes in the recovered targets was characterized by optical microscopy to analyze the failure modes. The experiment results show that the introducing of GNS effectively increases the ballistic limit velocity of CP Ti. After the introducing of GNS, the ballistic limit velocity of CP Ti increased by 5.8 %, 7.5 %, and 12 % under impact against ogival-nosed, hemisphere-nosed, and blunt-nosed projectiles, respectively. Microstructural analysis of the projectile holes indicates that the deformation of targets against blunt-nosed projectile is less than that against ogival-nosed projectile. Targets against ogival-nosed projectile absorbs more energy, resulting in a higher ballistic limit velocity than that against blunt-nosed projectile. A finite element model of GNS CP Ti was established using a layered modeling approach, and the simulation results were in good agreement with experimental findings. The enhanced mechanisms of ballistic performance of GNS CP Ti were revealed through both experiments and simulations. The target of GNS CP Ti can absorb more energy than untreated CP Ti under penetration. The GNS produced by EH treatment can not only improve the shear resistance of the target plate, but also redistribute the stress distribution in the target plate. Therefore, the GNS CP Ti target plate under blunt nosed shaped projectile has the strongest enhancement effect of ballistic performance.
AB - With the continuous development of lightweight armor, there is an increasing demand for titanium and its alloys with enhanced mechanical properties and ballistic performance. The introducing of gradient nanostructure (GNS) offers a promising approach to enhance comprehensive mechanical properties and ballistic performance of titanium and its alloys. In the present research, GNS commercially pure titanium (CP Ti) was prepared using explosion hardening (EH) technique. Both experimental tests and numerical simulations were conducted to investigate ballistic performance of GNS CP Ti. Projectiles with different head shapes were used to perforate GNS CP Ti targets at different velocities, and ballistic curves were fitted. The microstructure of the projectile holes in the recovered targets was characterized by optical microscopy to analyze the failure modes. The experiment results show that the introducing of GNS effectively increases the ballistic limit velocity of CP Ti. After the introducing of GNS, the ballistic limit velocity of CP Ti increased by 5.8 %, 7.5 %, and 12 % under impact against ogival-nosed, hemisphere-nosed, and blunt-nosed projectiles, respectively. Microstructural analysis of the projectile holes indicates that the deformation of targets against blunt-nosed projectile is less than that against ogival-nosed projectile. Targets against ogival-nosed projectile absorbs more energy, resulting in a higher ballistic limit velocity than that against blunt-nosed projectile. A finite element model of GNS CP Ti was established using a layered modeling approach, and the simulation results were in good agreement with experimental findings. The enhanced mechanisms of ballistic performance of GNS CP Ti were revealed through both experiments and simulations. The target of GNS CP Ti can absorb more energy than untreated CP Ti under penetration. The GNS produced by EH treatment can not only improve the shear resistance of the target plate, but also redistribute the stress distribution in the target plate. Therefore, the GNS CP Ti target plate under blunt nosed shaped projectile has the strongest enhancement effect of ballistic performance.
KW - Ballistic performance
KW - Explosion hardening
KW - Gradient nanostructure
KW - Mechanical properties
KW - Titanium alloy
UR - http://www.scopus.com/inward/record.url?scp=86000648157&partnerID=8YFLogxK
U2 - 10.1016/j.ijimpeng.2025.105295
DO - 10.1016/j.ijimpeng.2025.105295
M3 - Article
AN - SCOPUS:86000648157
SN - 0734-743X
VL - 202
JO - International Journal of Impact Engineering
JF - International Journal of Impact Engineering
M1 - 105295
ER -