Large-scale convective flow sustained by thermally active Lagrangian tracers
Lokahith Agasthya, Andreas Bartel, Luca Biferale, Matthias Ehrhardt,, Federico Toschi

TL;DR
This study demonstrates that thermally active Lagrangian tracers can induce and control large-scale convective flow in a fluid, revealing a novel method for manipulating thermal convection through particle-based protocols.
Contribution
The paper introduces a new numerical approach using thermally coupled tracer particles with active control protocols to induce and study flow instabilities and convection.
Findings
Transition from stable to convective flow depends on particle number and temperature.
Active particles promote large-scale convection and stable temperature gradients.
Lagrangian control can induce convection not observed with uniform bulk heating.
Abstract
Non-isothermal particles suspended in a fluid lead to complex interactions -- the particles respond to changes in the fluid flow, which in turn is modified by their temperature anomaly. Here, we perform a novel proof-of-concept numerical study based on tracer particles that are thermally coupled to the fluid. We imagine that particles can adjust their internal temperature reacting to some local fluid properties and follow simple, hard-wired active control protocols. We study the case where instabilities are induced by switching the particle temperature from hot to cold depending on whether it is ascending or descending in the flow. A macroscopic transition from a stable to unstable convective flow is achieved, depending on the number of active particles and their excess negative/positive temperature. The stable state is characterized by a flow with low turbulent kinetic energy, strongly…
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Taxonomy
TopicsLattice Boltzmann Simulation Studies · Fluid Dynamics and Turbulent Flows · Micro and Nano Robotics
