Wave spectroscopy in a driven granular material

Berhanu M.; Merminod S.; Castillo, G; Falcon E.

Keywords: dispersion relations; driven granular media; elastic coefficients; phonons

Abstract

Driven granular media constitute model systems in out-of-equilibrium statistical physics. By assimilating the motions of granular particles to those of atoms, by analogy, one can obtain macroscopic equivalent of phase transitions. Here, we study fluid-like and crystal-like two-dimensional states in a driven granular material. In our experimental device, a tunable magnetic field induces and controls remote interactions between the granular particles. We use high-speed video recordings to analyse the velocity fluctuations of individual particles in stationary regime. Using statistical averaging, we find that the particles self-organize into collective excitations characterized by dispersion relations in the frequencywavenumber space. These findings thus reveal that mechanical waves analogous to condensed matter phonons propagate in driven granular media. When the magnetic coupling is weak, the waves are longitudinal, as expected for a fluid-like phase. When the coupling is stronger, both longitudinal and transverse waves propagate, which is typically seen in solid-like phases. We model the dispersion relations using the spatial distribution of particles and their interaction potential. Finally, we infer the elastic parameters of the granular assembly from equivalent sound velocities, thus realizing the spectroscopy of a granular material.

Más información

Título según WOS: Wave spectroscopy in a driven granular material
Título según SCOPUS: Wave spectroscopy in a driven granular material
Título de la Revista: Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences
Volumen: 478
Número: 2262
Editorial: Royal Society Publishing
Fecha de publicación: 2022
Idioma: English
DOI:

10.1098/rspa.2022.0014

Notas: ISI, SCOPUS