TY - JOUR
T1 - Dynamic mechanical response and failure behaviour of AlMgB14-based ceramic
T2 - experimental observation, constitutive modelling and ballistic performance evaluation
AU - Lu, Yanyan
AU - Xu, Zheng
AU - Zhang, Yushu
AU - Suo, Tao
AU - Zhang, Jingxian
AU - Hou, Jianhong
AU - Wang, Wenzhi
N1 - Publisher Copyright:
© 2025 The Authors.
PY - 2025/9/1
Y1 - 2025/9/1
N2 - AlMgB14-based ceramics have emerged as promising materials for ballistic protection due to their ultra-hardness and low density. However, their dynamic mechanical behaviour and ballistic performance remain underexplored. In this work, the dynamic mechanical response and failure behaviour of an AlMgB14-based material were systematically investigated through experiments, theoretical analysis and simulation. Quasi-static compression and split Hopkinson pressure bar testing revealed that compressive strength increased with strain rate, and the stress–strain response changed from linear elastic to non-linear plastic behaviour. Microfractography observations revealed that the ceramic failure mode transitioned from intergranular to transgranular with increasing strain rate. Plate impact tests were conducted to determine the Hugoniot elastic limit and spall strength of the AlMgB14-based material. Additionally, experimental data and numerical simulations were used to determine the parameters of the Johnson–Holmquist II (JH-2) constitutive model. These parameters were validated by comparing simulated and experimental results for high-strain-rate deformation and fragmentation. Finally, ballistic simulations employing the established JH-2 model, including depth of penetration and high-velocity projectile impact of the AlMgB14-based ceramic, showed good agreement with experimental results. Compared to conventional ceramic materials, the AlMgB14-based ceramic demonstrated significantly higher ballistic resistance efficiency, effectively reducing projectile kinetic energy. This study elucidates the dynamic response and constitutive model of the AlMgB14-based ceramic, offering valuable insights into its applications for designing bulletproof structures.
AB - AlMgB14-based ceramics have emerged as promising materials for ballistic protection due to their ultra-hardness and low density. However, their dynamic mechanical behaviour and ballistic performance remain underexplored. In this work, the dynamic mechanical response and failure behaviour of an AlMgB14-based material were systematically investigated through experiments, theoretical analysis and simulation. Quasi-static compression and split Hopkinson pressure bar testing revealed that compressive strength increased with strain rate, and the stress–strain response changed from linear elastic to non-linear plastic behaviour. Microfractography observations revealed that the ceramic failure mode transitioned from intergranular to transgranular with increasing strain rate. Plate impact tests were conducted to determine the Hugoniot elastic limit and spall strength of the AlMgB14-based material. Additionally, experimental data and numerical simulations were used to determine the parameters of the Johnson–Holmquist II (JH-2) constitutive model. These parameters were validated by comparing simulated and experimental results for high-strain-rate deformation and fragmentation. Finally, ballistic simulations employing the established JH-2 model, including depth of penetration and high-velocity projectile impact of the AlMgB14-based ceramic, showed good agreement with experimental results. Compared to conventional ceramic materials, the AlMgB14-based ceramic demonstrated significantly higher ballistic resistance efficiency, effectively reducing projectile kinetic energy. This study elucidates the dynamic response and constitutive model of the AlMgB14-based ceramic, offering valuable insights into its applications for designing bulletproof structures.
KW - AlMgB-Based ceramic
KW - Ballistic performance
KW - Constitutive model
KW - Depth of penetration
KW - Mechanical responses
UR - https://www.scopus.com/pages/publications/105025583212
U2 - 10.1016/j.jmrt.2025.07.295
DO - 10.1016/j.jmrt.2025.07.295
M3 - 文章
AN - SCOPUS:105025583212
SN - 2238-7854
VL - 38
SP - 1603
EP - 1616
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
ER -