Emergence and time evolution of micro-structured new-phase domains play a crucial role in determining the macroscopic physical and mechanical behaviors of iron under shock compression. Here, we investigate, through molecular dynamics simulations and theoretical modelings, shock-induced phase transition process of iron from body-centered-cubic (bcc) to hexagonal-close-packed (hcp) structure. We present a central-moment method and a rolling-ball algorithm to calculate and analyze the morphology and growth speed of the hcp phase domains, and then propose a phase transition model to clarify our derived growth law of the phase domains. We also demonstrate that the new-phase evolution process undergoes three distinguished stages with different time scales of the hcp phase fraction in the system.
CITATION STYLE
Pang, W. W., Zhang, P., Zhang, G. C., Xu, A. G., & Zhao, X. G. (2014). Morphology and growth speed of hcp domains during shock-induced phase transition in iron. Scientific Reports, 4. https://doi.org/10.1038/srep03628
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