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Published December 2012 | Published
Journal Article Open

The impulse response of a high-speed jet forced with localized arc filament plasma actuators

Abstract

We present experimental and theoretical analyses of the response of high-speed, high-Reynolds-number, round jets to impulsive forcing with arc-filament-plasma actuators. The impulse response is obtained with forcing Strouhal numbers, based on the nozzle exit diameter and exit center line velocity, less than 0.1. The resulting phase-averaged near-field pressure signature displays a compact wave with a positive peak preceding a negative one, indicative of a large scale structure in the shear layer of the jet. Scaling laws derived by operating the jet at four subsonic Mach numbers are used to distinguish this hydrodynamic component of the phase-averaged jet response from the direct actuator noise. As the forcing frequency increases, the compact waves in the near-field pressure signal overlap each other, indicating interaction of the growing seeded structures. For this regime, the phase-averaged response is approximately replicated by linear superposition of the impulse response, thereby demonstrating the quasi-linearity of structure interaction. A novel application of linear parabolized stability theory yields a successful model of the impulse response.

Additional Information

© 2013 American Institute of Physics. Received 16 August 2012; accepted 8 November 2012; published online 19 December 2012. The support of this research by the Air Force Office of Scientific Research with Dr. John Schmisseur is greatly appreciated. The PSE code has been developed over the years by Dr. Kristjan Gudmundsson, Dr. Arnab Samanta, Dr. Daniel Rodriguez, and the first author (Aniruddha Sinha), under the guidance of the last author (Tim Colonius) – their contributions are gratefully acknowledged. The article was improved thanks to comments and suggestions from referees.

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August 22, 2023
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