Related Experiment Video
Updated: Apr 16, 2026

High-pressure, High-temperature Deformation Experiment Using the New Generation Griggs-type Apparatus
Published on: April 3, 2018
Grain-size-independent plastic flow at ultrahigh pressures and strain rates
H-S Park1, R E Rudd1, R M Cavallo1
1Lawrence Livermore National Laboratory, P.O. Box 808, Livermore, California 94551, USA.
Abstract:
A basic tenet of material science is that the flow stress of a metal increases as its grain size decreases, an effect described by the Hall-Petch relation. This relation is used extensively in material design to optimize the hardness, durability, survivability, and ductility of structural metals. This Letter reports experimental results in a new regime of high pressures and strain rates that challenge this basic tenet of mechanical metallurgy. We report measurements of the plastic flow of the model body-centered-cubic metal tantalum made under conditions of high pressure (>100 GPa) and strain rate (∼10(7) s(-1)) achieved by using the Omega laser. Under these unique plastic deformation ("flow") conditions, the effect of grain size is found to be negligible for grain sizes >0.25 μm sizes. A multiscale model of the plastic flow suggests that pressure and strain rate hardening dominate over the grain-size effects. Theoretical estimates, based on grain compatibility and geometrically necessary dislocations, corroborate this conclusion.
Related Concept Videos
Plastic Behavior
Plasticity
Plastic Deformations
Plastic Deformations
Shearing Strain
Elastic Strain Energy for Shearing Stresses

