International audienceWe derive hydrodynamic equations from Vicsek-style dry active matter models in three dimensions (3D), building on our experience on the 2D case using the Boltzmann-Ginzburg-Landau approach. The hydrodynamic equations are obtained from a Boltzmann equation expressed in terms of an expansion in spherical harmonics. All their transport coefficients are given with explicit dependences on particle-level parameters. The linear stability analysis of their spatially-homogeneous solutions is presented. While the equations derived for the polar case (original Vicsek model with ferromagnetic alignment) and their solutions do not differ much from their 2D counterparts, the active nematics case exhibits remarkable differences: we f...
Active fluids are far from equilibrium systems, nominally highly dense suspensions of elongated ele...
The hydrodynamic modes of a three-dimensional sheared granular flow are determined by solving the li...
This review summarizes theoretical progress in the field of active matter, placing it in the context...
International audienceWe derive hydrodynamic equations from Vicsek-style dry active matter models in...
We describe a generic theoretical framework, denoted as the Boltzmann-Ginzburg-Landau approach, to d...
We study the hydrodynamic behavior of three-dimensional (3D) incompressible collections of self-prop...
Active gels or active liquid crystals are soft materials which are driven out of equilibrium by t...
Kinetic theories constitute one of the most promising tools to decipher the characteristic spatiotem...
Active matter, i.e. nonequilibrium systems composed of many particles capable of exploiting the ener...
We describe a lattice Boltzmann algorithm to simulate liquid-crystal hydrodynamics in three dimen...
We review the state of the art of active fluids with particular attention to hydrodynamic continuous...
Collective motion is observed in many different biological systems like bird flocks or fish schools....
The Boltzmann equation for inelastic Maxwell models (IMM) is used to deter-mine the Navier–Stokes tr...
International audienceWe study in detail the hydrodynamic theories describing the transition to coll...
Active fluids are far from equilibrium systems, nominally highly dense suspensions of elongated ele...
The hydrodynamic modes of a three-dimensional sheared granular flow are determined by solving the li...
This review summarizes theoretical progress in the field of active matter, placing it in the context...
International audienceWe derive hydrodynamic equations from Vicsek-style dry active matter models in...
We describe a generic theoretical framework, denoted as the Boltzmann-Ginzburg-Landau approach, to d...
We study the hydrodynamic behavior of three-dimensional (3D) incompressible collections of self-prop...
Active gels or active liquid crystals are soft materials which are driven out of equilibrium by t...
Kinetic theories constitute one of the most promising tools to decipher the characteristic spatiotem...
Active matter, i.e. nonequilibrium systems composed of many particles capable of exploiting the ener...
We describe a lattice Boltzmann algorithm to simulate liquid-crystal hydrodynamics in three dimen...
We review the state of the art of active fluids with particular attention to hydrodynamic continuous...
Collective motion is observed in many different biological systems like bird flocks or fish schools....
The Boltzmann equation for inelastic Maxwell models (IMM) is used to deter-mine the Navier–Stokes tr...
International audienceWe study in detail the hydrodynamic theories describing the transition to coll...
Active fluids are far from equilibrium systems, nominally highly dense suspensions of elongated ele...
The hydrodynamic modes of a three-dimensional sheared granular flow are determined by solving the li...
This review summarizes theoretical progress in the field of active matter, placing it in the context...