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A Thermo-Elasto-Plastic Constitutive Model Based on Eulerian Strain Framework for Wide-Strain-Rate Response of Polycrystals: Part Ⅱ Application for Shock and Quasi-Isentropic Loading

delete2026-07-27
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PRE
AI
S
Shuqing Yang
G
Guisen Liu *
R
Ran Chen
J
Jianbo Hu
Y
Yuying Yu
W
Wenjun Zhu
Y
Yuanchao Gan
Y
Yao Shen *
DOI:10.1016/j.ijplas.2026.104776delete
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Abstract

Abstract

En 中文
• For the first time, the long-standing discrepancy between dynamic yield strengths measured by direct and self-consistent wave-profile analysis methods is resolved. • Systematically reveals the physical origins underlying the yield strength differences between shock and quasi-isentropic loading paths. • The distinct evolution of primary yield stress under shock vs. quasi-isentropic loading is revealed to be governed mainly by homogeneous dislocation nucleation. • For the first time, the complex zigzag evolution of secondary yield strength under shock loading is identified, and explained with the concept of critical dislocation density. • A unique “primary softening, secondary hardening” effect of GNDs under dynamic loading is revealed.

Journal

International Journal of Plasticity cover
International Journal of Plasticity
IF:
12.8
Papers:
4.0K
Citations:
2.5W

Organization

S
shanghai jiao tong university
Scholars:
15.1W
Papers: 11.5W
Citations: 159
C
china academy of engineering physics
Scholars:
805
Papers: 274
Citations: 0
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