Coexistence of active and hydrodynamic turbulence in two dimensional active nematics
arXiv:2210.16529 · doi:10.1103/PhysRevLett.129.218001
Abstract
In active nematic liquid crystals activity is able to drive chaotic spatiotemporal flows referred to as active turbulence. Active turbulence has been characterized through theoretical and experimental work as a low Reynolds number phenomenon. We show that, in two-dimensions, the active forcing alone is able to trigger hydrodynamic turbulence leading to the coexistence of active and inertial turbulence. This type of flows develops for sufficiently active and extensile flow-aligning nematics. We observe that the combined effect of an extensile nematic and large values of the flow-aligning parameter leads to a broadening of the elastic energy spectrum that promotes a growth of kinetic energy able to trigger an inverse energy cascade.
References in corpus (11)
- Meso-scale turbulence in living fluids
- Turning bacteria suspensions into a "superfluid"
- Defect dynamics in active nematics
- Growing condensate in two-dimensional turbulence
- Sheared active fluids: thickening, thinning and vanishing viscosity
- Excitable Patterns in Active Nematics
- Minimal continuum theories of structure formation in dense active fluids
- Universal profile of the vortex condensate in two-dimensional turbulence
- Multi-scale statistics of turbulence motorized by active matter
- Bacteria hinder large-scale transport and enhance small-scale mixing in time-periodic flows
- Driven active and passive nematics