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Influence of shock wave propagation on dielectric barrier discharge plasma actuator performance

Influence of shock wave propagation on dielectric barrier discharge plasma actuator performance
Influence of shock wave propagation on dielectric barrier discharge plasma actuator performance
Interest in plasma actuators as active flow control devices is growing rapidly due to their lack of mechanical parts, light weight and high response frequency. Although the flow induced by these actuators has received much attention, the effect that the external flow has on the performance of the actuator itself must also be considered, especially the influence of unsteady high-speed flows which are fast becoming a norm in the operating flight envelopes. The primary objective of this study is to examine the characteristics of a dielectric barrier discharge (DBD) plasma actuator when exposed to an unsteady flow generated by a shock tube. This type of flow, which is often used in different studies, contains a range of flow regimes from sudden pressure and density changes to relatively uniform high-speed flow regions. A small circular shock tube is employed along with the schlieren photography technique to visualize the flow. The voltage and current traces of the plasma actuator are monitored throughout, and using the well-established shock tube theory the change in the actuator characteristics are related to the physical processes which occur inside the shock tube. The results show that not only is the shear layer outside of the shock tube affected by the plasma but the passage of the shock front and high-speed flow behind it also greatly influences the properties of the plasma. © 2012 IOP Publishing Ltd.
0022-3727
Erfani, Rasool
90d5e127-23a1-4a50-adfc-73bb634eb220
Zare-Behtash, Hossein
74be9b97-cb09-49c6-9f75-7ec58c0dd16c
Kontis, Konstantinos
8e534eab-6495-4dcb-ab48-e2a8906bcd8a
Erfani, Rasool
90d5e127-23a1-4a50-adfc-73bb634eb220
Zare-Behtash, Hossein
74be9b97-cb09-49c6-9f75-7ec58c0dd16c
Kontis, Konstantinos
8e534eab-6495-4dcb-ab48-e2a8906bcd8a

Erfani, Rasool, Zare-Behtash, Hossein and Kontis, Konstantinos (2012) Influence of shock wave propagation on dielectric barrier discharge plasma actuator performance. Journal of Physics D: Applied Physics, 45 (22), [225201]. (doi:10.1088/0022-3727/45/22/225201).

Record type: Article

Abstract

Interest in plasma actuators as active flow control devices is growing rapidly due to their lack of mechanical parts, light weight and high response frequency. Although the flow induced by these actuators has received much attention, the effect that the external flow has on the performance of the actuator itself must also be considered, especially the influence of unsteady high-speed flows which are fast becoming a norm in the operating flight envelopes. The primary objective of this study is to examine the characteristics of a dielectric barrier discharge (DBD) plasma actuator when exposed to an unsteady flow generated by a shock tube. This type of flow, which is often used in different studies, contains a range of flow regimes from sudden pressure and density changes to relatively uniform high-speed flow regions. A small circular shock tube is employed along with the schlieren photography technique to visualize the flow. The voltage and current traces of the plasma actuator are monitored throughout, and using the well-established shock tube theory the change in the actuator characteristics are related to the physical processes which occur inside the shock tube. The results show that not only is the shear layer outside of the shock tube affected by the plasma but the passage of the shock front and high-speed flow behind it also greatly influences the properties of the plasma. © 2012 IOP Publishing Ltd.

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e-pub ahead of print date: 16 May 2012

Identifiers

Local EPrints ID: 493196
URI: http://eprints.soton.ac.uk/id/eprint/493196
ISSN: 0022-3727
PURE UUID: bb007408-aedb-44a7-9fa5-63e1fa52522d
ORCID for Hossein Zare-Behtash: ORCID iD orcid.org/0000-0002-4769-4076

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Date deposited: 27 Aug 2024 16:56
Last modified: 28 Aug 2024 02:16

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Contributors

Author: Rasool Erfani
Author: Hossein Zare-Behtash ORCID iD
Author: Konstantinos Kontis

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