Atomic mechanism for elastic–plastic behaviors of uranium-6 wt. % niobium single crystal alloy under shock compressions
Abstract
The absence of an elastic precursor (EP) in shock-loaded U-6 wt. % Nb alloys has long been attributed to the rapid shear stress relaxation due to phase transformation or twinning. As a first step toward uncovering such issues, we investigate the shock responses of uranium-6 wt. % niobium single-crystal alloys through large-scale non-equilibrium molecular dynamics simulations combined with first-principles calculations. Our results suggest that no clear EP is observed for shocks along the b and c axes, while an EP emerges along the a axis under certain conditions. The EP disappearance stems from a slower elastic-wave velocity compared to the plastic wave velocity—a direct consequence of enhanced compression modulus during shock compression. The modulus enhancement in the α″ phase is attributed to the first stage of a two-stage plastic mechanism: picosecond-scale stress decay via coordinated (001)-plane shuffling forms a transient intermediate phase, followed by a much longer timescale γ-phase transformation through [100]/[1¯00] shear on (010) planes, generating {112}〈111〉 twins. This mechanism underscores the critical role of transient intermediate phases under rapid compression, challenging prior interpretations and providing atomic-scale insights for the shock responses of uranium alloys.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (7)
Yanwen Liao
College of Materials Science and Engineering, State Key Laboratory of Cemented Carbide, Hunan University 1 , Changsha 410082,
Zhiguo Li
Yongfeng Huang
Kun Wang
Beijing National Laboratory for Molecular Science, State Key Laboratory of Rare Earth Materials Chemistry and Applications, College of Chemistry and Molecular Engineering
Wenjun Zhu
Jun Chen
Songlin Yao
National Key Laboratory of Shock Wave and Detonation Physics, Institute of Fluid Physics 4 , Mianyang 621900,