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Publishing Language: Chinese | Open Access

Hugoniot Equation of State Model for Mixtures

Gang YANG1,2Zhengyang ZHAO1Xun LIU3Jianian HU1,2Yongsheng JIA1,2( )
State Key Laboratory of Precision Blasting, Jianghan University, Wuhan 430056, Hubei, China
Hubei Key Laboratory of Blasting Engineering, Jianghan University, Wuhan 430056, Hubei, China
School of Physics and Mechanics, Wuhan University of Technology, Wuhan 430070, Hubei, China
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Abstract

High-throughput computing has become a cornerstone of modern materials design and is driving new advances in the study of shock-compressed matter. Central to these efforts is an accurate Hugoniot equation of state (EOS) for mixtures, yet existing mixture models continue to show sizeable scatter. Here we benchmarked two widely used schemes—the volume-additive model (Mod A) and the isothermal-average model (ModⅠ)—against experimental Hugoniot data for binary alloys, ternary alloys and granular mixtures. The Mod A model assumes full thermodynamic equilibrium and neglects the temperature rise of individual constituents under shock compression. The ModⅠ model, by contrast, removes this thermal contribution by deriving the mixture Hugoniot from 0 K isotherms via the Mie-Grüneisen EOS. Systematic comparison between the predicted Hugoniot EOS of binary alloy, ternary alloy, granular mixtures and the experimental data reveals that the ModⅠ model reproduces measured Hugoniot states within about 10% error across the entire pressure range studied, outperforming the Mod A model in both accuracy and robustness. Both approaches exhibit moderately larger discrepancies at low shock pressures, where thermal effects are most pronounced.

CLC number: O521.2 Document code: A

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Chinese Journal of High Pressure Physics

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Cite this article:
YANG G, ZHAO Z, LIU X, et al. Hugoniot Equation of State Model for Mixtures. Chinese Journal of High Pressure Physics, 2025, 39(11). https://doi.org/10.11858/gywlxb.20251120

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Received: 01 July 2025
Revised: 14 August 2025
Published: 05 November 2025
© 2025 Editorial Office of Chinese Journal of High Pressure Physics

This is an open access article under the CC BY-NC-ND license (https://creativecommons.org/licenses/by-nc/4.0/)