Plasma actuators for active flow control based on a glow discharge
Markus Kuhn, Marina Kühn-Kauffeldt, J. Schein, Antoine Belinger
Abstract
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Markus Kuhn, Marina Kühn-Kauffeldt, J. Schein, Antoine Belinger
Abstract
Open-access reader
In this work a glow discharge based active flow control for high flow velocities and low Reynolds numbers is presented. Unlike common plasma actuators such as dielectric barrier discharge (DBD) or spark jets, this actuator uses small impulse bits at frequencies. The actuator is optimized for frequencies up to 40 kHz to counter Tollmien Schlichting wave effects and so reduce overall air foil drag. Several measurements to prove the non-eroding effect of the actuator and the electrical properties were performed. It was found that the actuator is capable of operating at high frequencies without measurable erosion.
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In this work a glow discharge based active flow control for high flow velocities and low Reynolds numbers is presented. Unlike common plasma actuators such as dielectric barrier discharge (DBD) or spark jets, this actuator uses small impulse bits at frequencies. The actuator is optimized for frequencies up to 40 kHz to counter Tollmien Schlichting wave effects and so reduce overall air foil drag. Several measurements to prove the non-eroding effect of the actuator and the electrical properties were performed. It was found that the actuator is capable of operating at high frequencies without measurable erosion.
Key concepts: Plasma actuator, Dielectric barrier discharge, Flow control (data), Actuator, Drag, Materials science, Reynolds number, Mechanics