Experimental Demonstration of SDRL Controller for TS Wave Suppression with DBD Actuator

Fuente: arXiv
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Main Authors: Mohammadikalakoo, Babak, Villasol, Sergio Garcia, Salomone, Gabriele, Kotsonis, Marios, Doan, Nguyen Anh Khoa
Format: Preprint
Published: 2026
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_version_ 1866915947342725120
author Mohammadikalakoo, Babak
Villasol, Sergio Garcia
Salomone, Gabriele
Kotsonis, Marios
Doan, Nguyen Anh Khoa
author_facet Mohammadikalakoo, Babak
Villasol, Sergio Garcia
Salomone, Gabriele
Kotsonis, Marios
Doan, Nguyen Anh Khoa
contents An experimental wind-tunnel implementation of a model-free single-step deep reinforcement learning (SDRL) controller is presented for TS wave suppression in a flat plate boundary layer. The controller is deployed in a feedforward layout. The arrangement comprises an upstream reference microphone, a downstream error microphone, and a DBD plasma actuator located between them. The controller updates its policy online from the measured error signal and, in real time, adjusts the coefficients of a finite-impulse-response (FIR) filter that maps the reference signal to the actuation command. TS waves are artificially introduced by a second, upstream-located DBD trigger actuator identical in specification to the control actuator. The trigger actuator is driven with single-frequency, multi-frequency, or broadband white-noise inputs depending on the control cases. Experiments were carried out in an anechoic wind tunnel facility using flush-mounted pressure microphones for sensing and controller feedback, together with two-component planar particle image velocimetry~(PIV) for flow-field verification. The controller performance is assessed via second-order statistics of the error signal and the spectral attenuation of the TS wave content. Across all tested scenarios, the SDRL-based controller consistently reduces the downstream disturbance level and exhibits robustness to moderate variations in freestream velocity and in the incoming TS wave disturbance spectrum. These results provide an experimental step toward adaptable, data-driven TS wave suppression with compact sensing and actuation, supporting practical strategies for boundary layer transition delay.
format Preprint
id arxiv_https___arxiv_org_abs_2604_19326
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Experimental Demonstration of SDRL Controller for TS Wave Suppression with DBD Actuator
Mohammadikalakoo, Babak
Villasol, Sergio Garcia
Salomone, Gabriele
Kotsonis, Marios
Doan, Nguyen Anh Khoa
Fluid Dynamics
An experimental wind-tunnel implementation of a model-free single-step deep reinforcement learning (SDRL) controller is presented for TS wave suppression in a flat plate boundary layer. The controller is deployed in a feedforward layout. The arrangement comprises an upstream reference microphone, a downstream error microphone, and a DBD plasma actuator located between them. The controller updates its policy online from the measured error signal and, in real time, adjusts the coefficients of a finite-impulse-response (FIR) filter that maps the reference signal to the actuation command. TS waves are artificially introduced by a second, upstream-located DBD trigger actuator identical in specification to the control actuator. The trigger actuator is driven with single-frequency, multi-frequency, or broadband white-noise inputs depending on the control cases. Experiments were carried out in an anechoic wind tunnel facility using flush-mounted pressure microphones for sensing and controller feedback, together with two-component planar particle image velocimetry~(PIV) for flow-field verification. The controller performance is assessed via second-order statistics of the error signal and the spectral attenuation of the TS wave content. Across all tested scenarios, the SDRL-based controller consistently reduces the downstream disturbance level and exhibits robustness to moderate variations in freestream velocity and in the incoming TS wave disturbance spectrum. These results provide an experimental step toward adaptable, data-driven TS wave suppression with compact sensing and actuation, supporting practical strategies for boundary layer transition delay.
title Experimental Demonstration of SDRL Controller for TS Wave Suppression with DBD Actuator
topic Fluid Dynamics
url https://arxiv.org/abs/2604.19326