Martial Noirhomme
University of Liège
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Publication
Featured researches published by Martial Noirhomme.
European Physical Journal E | 2015
Martial Noirhomme; Eric Opsomer; Nicolas Vandewalle; François Ludewig
We numerically and theoretically investigate the behavior of a granular gas driven by asymmetric plates. The injection of energy in the dissipative system differs from one side to the opposite one. We prove that the dynamical clustering which is expected for such a system is affected by the asymmetry. As a consequence, the cluster position can be fully controlled. This property could lead to various applications in the handling of granular materials in low-gravity environment. Moreover, the dynamical cluster is characterized by natural oscillations which are also captured by a model. These oscillations are mainly related to the cluster size, thus providing an original way to probe the clustering behavior.Graphical abstract
European Physical Journal E | 2014
Eric Opsomer; Nicolas Vandewalle; Martial Noirhomme; François Ludewig
In microgravity, the successive inelastic collisions in a granular gas can lead to a dynamical clustering of the particles. This transition depends on the filling fraction of the system, the restitution of the used materials and on the size of the particles. We report simulations of driven bi-disperse gas made of small and large spheres. The size as well as the mass difference imply a strong modification in the kinematic chain of collisions and therefore alter significantly the formation of a cluster. Moreover, the different dynamical behaviors can also lead to a demixing of the system, adding a few small particles in a gas of large ones can lead to a partial clustering of the taller type. We realized a detailed phase diagram recovering the encountered regimes and developed a theoretical model predicting the possibility of dynamical clustering in binary systems.Graphical abstract
npj Microgravity | 2017
Eric Opsomer; Martial Noirhomme; Nicolas Vandewalle; Eric Falcon; Simon Merminod
Space exploration and exploitation face a major challenge: the handling of granular materials in low-gravity environments. Indeed, grains behave quite differently in space than on Earth, and the dissipative nature of the collisions between solid particles leads to clustering. Within poly-disperse materials, the question of segregation is highly relevant but has not been addressed so far in microgravity. From parabolic flight experiments on dilute binary granular media, we show that clustering can trigger a segregation mechanism, and we observe, for the first time, the formation of layered structures in the bulk.
Review of Scientific Instruments | 2018
Sébastien Aumaître; Robert P. Behringer; A. Cazaubiel; Eric Clément; Jérôme Crassous; Douglas J. Durian; Eric Falcon; S. Fauve; David Fischer; A. Garcimartín; Yves Garrabos; M. Hou; X. Jia; C. Lecoutre; Stefan Luding; Diego Maza; Martial Noirhomme; Eric Opsomer; Fabien Palencia; Thorsten Pöschel; J. Schockmel; Matthias Sperl; Ralf Stannarius; Nicolas Vandewalle; P. Yu
A new experimental facility has been designed and constructed to study driven granular media in a low-gravity environment. This versatile instrument, fully automatized, with a modular design based on several interchangeable experimental cells, allows us to investigate research topics ranging from dilute to dense regimes of granular media such as granular gas, segregation, convection, sound propagation, jamming, and rheology-all without the disturbance by gravitational stresses active on Earth. Here, we present the main parameters, protocols, and performance characteristics of the instrument. The current scientific objectives are then briefly described and, as a proof of concept, some first selected results obtained in low gravity during parabolic flight campaigns are presented.
Physical Review E | 2017
Martial Noirhomme; François Ludewig; Nicolas Vandewalle; Eric Opsomer
We investigate numerically and theoretically the internal structures of a driven granular gas in cuboidal cell geometries. Clustering is reported and particles are classified as gaseous or clustered via a local packing fraction criterion based on a Voronoi tessellation. We observe that small clusters arise in the corners of the box, elucidating early reports of partial clustering. These aggregates have a condensation-like surface growth. When a critical size is reached, a structural transition occurs and all clusters merge together, leaving a hole in the center of the cell. This hole then becomes the new center of particle capture. Taking into account all structural modifications and defining a saturation packing fraction, we propose an empirical model for the cluster growth.
European Physical Journal E | 2016
Eric Opsomer; Martial Noirhomme; François Ludewig; Nicolas Vandewalle
Abstract.We investigated experimentally and theoretically the dynamics of a driven granular gas on a square lattice and discovered two characteristic regimes: Initially, given the dissipative nature of the collisions, particles move erratically through the system and start to gather on selected sites called traps. Later on, the formation of those traps leads to a strong decrease of the grain mobility and slows down dramatically the dynamics of the entire system. We realize detailed measurements linking a traps stability to the global evolution of the system and propose a model reproducing the entire dynamics of the system. Our work emphasizes the complexity of coarsening dynamics of dilute granular systems.Graphical abstract
Physical Review E | 2013
Eric Opsomer; Martial Noirhomme; Nicolas Vandewalle; François Ludewig
EPL | 2018
Martial Noirhomme; Annette Cazaubiel; Alexis Darras; Eric Falcon; David Fischer; Yves Garrabos; Carole Lecoutre-Chabot; Simon Merminod; Eric Opsomer; Fabien Palencia; Julien Schockmel; Ralf Stannarius; Nicolas Vandewalle
EPJ Web of Conferences | 2017
Eric Opsomer; Martial Noirhomme; Nicolas Vandewalle
Archive | 2016
Martial Noirhomme