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Cited article:

Tantalum strength at extreme strain rates from impact-driven Richtmyer-Meshkov instabilities

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Physical Review E 100 (5) (2019)
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Estimation of Metal Strength at Very High Rates Using Free-Surface Richtmyer–Meshkov Instabilities

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Journal of Dynamic Behavior of Materials 3 (2) 189 (2017)
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Onset of failure in argon by the effect of a shockwave: A molecular dynamics study

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Computational Materials Science 49 (3) 582 (2010)
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Simulation of Damage Percolation Within Aluminum Alloy Sheet

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Journal of Engineering Materials and Technology 131 (2) 021001 (2009)
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Atomistic simulations of shock induced microstructural evolution and spallation in single crystal nickel

S. G. Srinivasan, M. I. Baskes and G. J. Wagner
Journal of Applied Physics 101 (4) 043504 (2007)
https://doi.org/10.1063/1.2423084

Atomistic Simulations of the Plasticity Behavior of Shock-Induced Polycrystalline Nickel

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Metallurgical and Materials Transactions A 38 (11) 2716 (2007)
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Quantitative description of damage evolution in ductile fracture of tantalum

J. M. Rivas, A. K. Zurek, W. R. Thissell, D. L. Tonks and R. S. Hixson
Metallurgical and Materials Transactions A 31 (3) 845 (2000)
https://doi.org/10.1007/s11661-000-0028-z

Quantitative description of damage evolution in ductile fracture of tantalum

J. M. Rivas, A. K. Zurek, W. R. Thissell, D. L. Tonks and R. S. Hixson
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Microcracks, spall and fracture in glass: A study using short pulsed laser shock waves

Xin-Zen Li, M. Nakano, Y. Yamauchi, K. Kishida and K. A. Tanaka
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Constitutive Relation in High/Very High Strain Rates

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Constitutive Relation in High/Very High Strain Rates 209 (1996)
https://doi.org/10.1007/978-4-431-65947-1_24