Galien Grosjean
University of Liège
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Publication
Featured researches published by Galien Grosjean.
Physical Review E | 2016
Guillaume Lagubeau; Galien Grosjean; Alexis Darras; Geoffroy Lumay; Maxime Hubert; Nicolas Vandewalle
When ferromagnetic particles are suspended at an interface under magnetic fields, dipole-dipole interactions compete with capillary attraction. This combination of forces has recently given promising results towards controllable self-assemblies as well as low-Reynolds-number swimming systems. The elementary unit of these assemblies is a pair of particles. Although equilibrium properties of this interaction are well described, the dynamics remain unclear. In this paper, the properties of magnetocapillary bonds are determined by probing them with magnetic perturbations. Two deformation modes are evidenced and discussed. These modes exhibit resonances whose frequencies can be detuned to generate nonreciprocal motion. A model is proposed that can become the basis for elaborate collective behaviors.
Advances in Colloid and Interface Science | 2017
Galien Grosjean; Maxime Hubert; Nicolas Vandewalle
This paper presents an overview and discussion of magnetocapillary self-assemblies. New results are presented, in particular concerning the possible development of future applications. These self-organizing structures possess the notable ability to move along an interface when powered by an oscillatory, uniform magnetic field. The system is constructed as follows. Soft magnetic particles are placed on a liquid interface, and submitted to a magnetic induction field. An attractive force due to the curvature of the interface around the particles competes with an interaction between magnetic dipoles. Ordered structures can spontaneously emerge from these conditions. Furthermore, time-dependent magnetic fields can produce a wide range of dynamic behaviours, including non-time-reversible deformation sequences that produce translational motion at low Reynolds number. In other words, due to a spontaneous breaking of time-reversal symmetry, the assembly can turn into a surface microswimmer. Trajectories have been shown to be precisely controllable. As a consequence, this system offers a way to produce microrobots able to perform different tasks. This is illustrated in this paper by the capture, transport and release of a floating cargo, and the controlled mixing of fluids at low Reynolds number.
European Physical Journal E | 2017
Martin Poty; Floriane Weyer; Galien Grosjean; Geoffroy Lumay; Nicolas Vandewalle
Abstract.Ferromagnetic particles are incorporated in a thin soft elastic matrix. A lamella, made of this smart material, is studied experimentally and modeled. We show herein that thin films can be actuated using an external magnetic field applied through the system. The system is found to be switchable since subcritical pitchfork bifurcation is discovered in the beam shape when the magnetic field orientation is modified. Strong magnetoelastic effects can be obtained depending on both field strength and orientation. Our results provide versatile ways to contribute to many applications from the microfabrication of actuators to soft robotics. As an example, we created a small synthetic octopus piloted by an external magnetic field.Graphical abstractFerromagnetic particles are incorporated in a thin soft elastic matrix. A lamella, made of this smart material, is studied experimentally and modeled. We show herein that thin films can be actuated using an external magnetic field applied through the system. The system is found to be switchable since subcritical pitchfork bifurcation is discovered in the beam shape when the magnetic field orientation is modified. Strong magnetoelastic effects can be obtained depending on both field strength and orientation. Our results provide versatile ways to contribute to many applications from the microfabrication of actuators to soft robotics. As an example, we created a small synthetic octopus piloted by an external magnetic field.
arXiv: Fluid Dynamics | 2018
Galien Grosjean; Maxime Hubert; Ylona Collard; Salvatore Pillitteri; Nicolas Vandewalle
Bulletin of the American Physical Society | 2017
Maxime Hubert; Galien Grosjean; Guillaume Lagubeau; Nicolas Vandewalle
Bulletin of the American Physical Society | 2017
Galien Grosjean; Maxime Hubert; Guillaume Lagubeau; Nicolas Vandewalle
Archive | 2016
Galien Grosjean; Nicolas Vandewalle; Maxime Hubert; Guillaume Lagubeau
Archive | 2016
Galien Grosjean; Maxime Hubert; Guillaume Lagubeau; Geoffroy Lumay; Nicolas Vandewalle
Archive | 2015
Galien Grosjean; Guillaume Lagubeau; Maxime Hubert; Nicolas Vandewalle
Archive | 2015
Galien Grosjean; Nicolas Vandewalle; Guillaume Lagubeau; Maxime Hubert