Reinforcement-learning-based control of convectively-unstable flows
Da Xu, Mengqi Zhang

TL;DR
This paper demonstrates the successful application of deep reinforcement learning to control convectively unstable flows, effectively reducing perturbations in both simplified models and boundary layer flows, with optimized sensor placement enhancing performance.
Contribution
It introduces a model-free DRL control strategy for convectively unstable flows, including sensor placement optimization and flow instability-aware reward functions, advancing flow control methods.
Findings
DRL effectively suppresses downstream perturbations in KS and boundary layer flows.
Optimized sensor placement improves control performance.
Flow instability-aware rewards enhance control effectiveness.
Abstract
This work reports the application of a model-free deep-reinforcement-learning-based (DRL) flow control strategy to suppress perturbations evolving in the 1-D linearised Kuramoto-Sivashinsky (KS) equation and 2-D boundary layer flows. The former is commonly used to model the disturbance developing in flat-plate boundary layer flows. These flow systems are convectively unstable, being able to amplify the upstream disturbance, and are thus difficult to control. The control action is implemented through a volumetric force at a fixed position and the control performance is evaluated by the reduction of perturbation amplitude downstream. We first demonstrate the effectiveness of the DRL-based control in the KS system subjected to a random upstream noise. The amplitude of perturbation monitored downstream is significantly reduced and the learnt policy is shown to be robust to both measurement…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Fluid Dynamics and Vibration Analysis · Lattice Boltzmann Simulation Studies
