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结合高压热弹性模拟数据的Hugoniot弹性极限实验解读

尹俊磊 高兴誉 王毅 刘海风 宋海峰 李金山 张平祥

物理学报2026,Vol.75Issue(12):325-335,11.
物理学报2026,Vol.75Issue(12):325-335,11.DOI:10.7498/aps.75.20260047

结合高压热弹性模拟数据的Hugoniot弹性极限实验解读

Interpretation of Hugoniot elastic limit experiments based on high-pressure thermoelastic simulations

尹俊磊 1高兴誉 2王毅 1刘海风 2宋海峰 2李金山 1张平祥1

作者信息

  • 1. 西北工业大学,凝固技术全国重点实验室,西安 710072
  • 2. 北京应用物理与计算数学研究所,计算物理全国重点实验室,北京,100088
  • 折叠

摘要

Abstract

The Hugoniot elastic limit(HEL)serves as the critical stress threshold demarcating the transition from purely elastic to elastoplastic response under dynamic loading.Accurate determination of the HEL is essential for understanding dynamic mechanical behavior.Traditionally,the HEL is derived from the"double-wave"structure of free-surface velocity profiles.However,wavefront dispersion of the elastic precursor and non-steady-state effects in short-pulse laser-driven experiments introduce systematic deviations in longitudinal sound velocity measurements,thereby limiting precise HEL determination.To address these challenges,a self-consistent interpretation method integrating macroscopic conservation laws with microscopic thermoelastic simulations is established. Based on momentum conservation,this work establishes a self-consistent equation that relates axial stress to longitudinal sound velocity and particle velocity.This equation corresponds to the process in which high-stress perturbations catch up with low-stress wavefronts.Using the experimentally measured elastic-precursor particle velocity as the constraint,the HEL and the corresponding longitudinal sound velocity can be determined self-consistently by iteratively solving this equation,without relying on ambiguous wavefront arrival-time measurements.To support this procedure,a continuous sound velocity-pressure constitutive relationship is derived from a high-pressure thermoelastic dataset spanning 0-1000 GPa,constructed using density functional theory combined with the mean-field potential(MFP)method and the quasi-static approximation(QSA). The validity of this approach is verified using diamond as a benchmark material.The predicted elastic moduli agree with static compression data within 0.4%relative deviation up to 15 GPa.For gas-gun experiments with peak stresses reaching 1 TPa,the reinterpreted HEL values show less than 2%relative deviation from standard experimental benchmarks.These results quantitatively characterize the crystalline anisotropy,where the longitudinal sound velocity follows the sequence[111]>[110]>[100].For laser-driven experiments where non-steady-state attenuation previously caused systematic underestimation,the HEL values are corrected upward by 8%-13%,reconciling discrepancies between different loading platforms. This hybrid approach enables the retrospective correction of non-ideal experimental effects through solely through data reanalysis,thereby providing high-precision dynamic constitutive parameters under extreme conditions without requiring specialized experimental configurations.The datasets presented in this paper are openly available at https://doi.org/10.57760/sciencedb.j00213.00274.

关键词

Hugoniot弹性极限/冲击压缩/纵波声速/密度泛函理论/金刚石

Key words

Hugoniot elastic limit/shock compression/longitudinal sound velocity/density functional theory/diamond

引用本文复制引用

尹俊磊,高兴誉,王毅,刘海风,宋海峰,李金山,张平祥..结合高压热弹性模拟数据的Hugoniot弹性极限实验解读[J].物理学报,2026,75(12):325-335,11.

基金项目

国家自然科学基金(批准号:U23A20537)资助的课题. Project supported by the National Natural Science Foundation of China(Grant No.U23A20537). (批准号:U23A20537)

物理学报

1000-3290

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