Vanishing dynamic strength measured in a transient high-pressure phase of tin
This work reports two independent experimental estimations of the dynamic strength of the body-centered tetragonal (bct) πΎ phase of tin, which occurs at pressures above about 9 GPa and transforms promptly back to the ambient π½ phase upon pressure release. Measuring strength in such a transient high-pressure phase is challenging. One measurement used free-surface Richtmyer-Meshkov instabilities generated with gas gun impact. Another set of measurements used ramp-release loading in a pulsed-power facility. Strength estimations came from comparison to simulations using a comprehensive multiphase modeling framework that includes equation of state, shear moduli, and strength separately for each phase, and treats mixed-phase regions. Both experimental methods found the πΎ-phase strength to be very low, within experimental uncertainty of zero. The existing literature on other materials, by contrast, almost universally reports higher strength in transient high-pressure phases compared with ambient phases. Recent Molecular-Dynamics simulations on tin in the literature showed almost zero deviatoric strength during a deformation-induced bct β bct transformation in which one of the πΎ-phase π axes βflipsβ to the π axis. This reorientation currently provides the most plausible explanation for the low observed strength in πΎ-phase tin.