The hydrodynamic properties of a squirmer type of self-propelled particle in a simple shear flow are investigated using the immersed boundary-lattice Boltzmann method in the range of swimming Reynolds number 0.05 ≤ Res ≤ 2.0, flow Reynolds number 40 ≤ Rep ≤ 160, blocking rate 0.2 ≤ κ ≤ 0.5. Some results are validated by comparing with available other results. The effects of Res, Rep and κ on the hydrodynamic properties of squirmer are discussed. The results show that there exist four distinct motion modes for the squirmer, i.e., horizontal mode, attractive oscillation mode, oscillation mode, and chaotic mode. Increasing Res causes the motion mode of the squirmer to change from a constant tumbling near the centerline to a stable horizontal m...
Biological and artificial microswimmers often encounter fluid media with non-Newtonian rheological p...
A microswimmer placed inside of a passive lamellar vesicle can hydrodynamically induce directed moti...
The development of novel drug delivery systems, which are revolutionizing modern medicine, is benefi...
International audienceUsing lattice Boltzmann simulations we study the hydrodynamics of an active sp...
The squirmer is a simple yet instructive model for microswimmers, which employs an effective slip ve...
The swimming behavior of self-propelled microorganisms is studied by particle-based mesoscale simula...
Using lattice Boltzmann simulations we study the hydrodynamics of an active spherical particle near ...
The self-propulsion of a spherical squirmer - a model swimming organism that achieves locomotion via...
We present a theoretical study of the behaviour of two active particles under the action of harmonic...
Self-propelled particles have been experimentally shown to orbit spherical obstacles and move along ...
Many micro-organisms find themselves immersed in fluids displaying non-Newtonian rheological propert...
The motion of microorganisms presents interesting and diffcult problems ranging from mechanisms of p...
Both biological swimming microorganisms and artificial active particles capable of propulsion have r...
In this paper, we investigate the dynamics of a model spherical microorganism, called squirmer, susp...
Hydrodynamic interactions are fundamental for the dynamics of swimming self-propelled particles. Spe...
Biological and artificial microswimmers often encounter fluid media with non-Newtonian rheological p...
A microswimmer placed inside of a passive lamellar vesicle can hydrodynamically induce directed moti...
The development of novel drug delivery systems, which are revolutionizing modern medicine, is benefi...
International audienceUsing lattice Boltzmann simulations we study the hydrodynamics of an active sp...
The squirmer is a simple yet instructive model for microswimmers, which employs an effective slip ve...
The swimming behavior of self-propelled microorganisms is studied by particle-based mesoscale simula...
Using lattice Boltzmann simulations we study the hydrodynamics of an active spherical particle near ...
The self-propulsion of a spherical squirmer - a model swimming organism that achieves locomotion via...
We present a theoretical study of the behaviour of two active particles under the action of harmonic...
Self-propelled particles have been experimentally shown to orbit spherical obstacles and move along ...
Many micro-organisms find themselves immersed in fluids displaying non-Newtonian rheological propert...
The motion of microorganisms presents interesting and diffcult problems ranging from mechanisms of p...
Both biological swimming microorganisms and artificial active particles capable of propulsion have r...
In this paper, we investigate the dynamics of a model spherical microorganism, called squirmer, susp...
Hydrodynamic interactions are fundamental for the dynamics of swimming self-propelled particles. Spe...
Biological and artificial microswimmers often encounter fluid media with non-Newtonian rheological p...
A microswimmer placed inside of a passive lamellar vesicle can hydrodynamically induce directed moti...
The development of novel drug delivery systems, which are revolutionizing modern medicine, is benefi...