Superheating and melting phenomena of a vibrated granular layer of cubic particles.

López-González, Francisco; Rodríguez-Liñán, Gustavo M; Donado, Fernando; Pacheco-Vázquez, Felipe; Elizondo-Aguilera, Luis Fernando · Phys Rev E · 2026

basic_science · Level V

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Abstract

We report the combined results of both experiments and molecular dynamics simulations, carried out to investigate superheating phenomena in vertically vibrated granular matter. Specifically, we consider a system of cubic particles, densely packed in a squared-lattice array and subjected to different acceleration shaking strengths Γ. Below a critical value Γ_{c}∼3.2, the excited crystalline array remains stable indefinitely, whereas for a fixed Γ>Γ_{c}, the system stays first in a metastable solid phase and then it transitions progressively into a liquid phase, during a Γ-dependent timescale τ_{m}. The value of Γ_{c} required to observe metastable superheated states for cubic particles is considerably larger than the value previously reported for spherical beads (Γ_{c}^{sph}∼1.4), which is attributed to a more efficient energy dissipation process due to interparticle friction, that also lengthens substantially the lifetime of the superheated crystal. Notably, however, the exponents of the power scaling laws for τ_{m}(Γ) are very similar for both geometries, suggesting universality in this transition. Our findings also show that the transition from the superheated-solid to the liquid state of the vibrated system is well captured by a Kolmogorov-Johnson-Mehl-Avrami equation, routinely employed to describe phase transformations in thermal systems.