2004Unpublished venueOpen access

Synthetic Jet Flow Field Database for CFD Validation

Chung-Sheng Yao, Fang-Jenq Chen, J. E. Harris, Dan Neuhart

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Abstract

An oscillatory zero net mass flow jet was generated by a cavity-pumping device, namely a synthetic jet actuator. This basic oscillating jet flow field was selected as the first of the three test cases for the Langley workshop on CFD Validation of Synthetic Jets and Turbulent Separation Control. The purpose of this workshop was to assess the current CFD capabilities to predict unsteady flow fields of synthetic jets and separation control. This paper describes the characteristics and flow field database of a synthetic jet in a quiescent fluid. In this experiment, Particle Image Velocimetry (PIV), Laser Doppler Velocimetry (LDV), and hot-wire anemometry were used to measure the jet velocity field. In addition, the actuator operating parameters including diaphragm displacement, internal cavity pressure, and internal cavity temperature were also documented to provide boundary conditions for CFD modeling. Nomenclature d = diaphragm displacement h = jet exit slot width f = forcing frequency u = velocity component along the slot v = velocity component across the slot w = jet streamwise component x = along-slot coordinate y = across-slot coordinate z = jet streamwise coordinate p = cavity pressure T = cavity temperature Re max = Reynolds based on maximum jet velocity and slot width T

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An oscillatory zero net mass flow jet was generated by a cavity-pumping device, namely a synthetic jet actuator. This basic oscillating jet flow field was selected as the first of the three test cases for the Langley workshop on CFD Validation of Synthetic Jets and Turbulent Separation Control. The purpose of this workshop was to assess the current CFD capabilities to predict unsteady flow fields of synthetic jets and separation control. This paper describes the characteristics and flow field database of a synthetic jet in a quiescent fluid. In this experiment, Particle Image Velocimetry (PIV), Laser Doppler Velocimetry (LDV), and hot-wire anemometry were used to measure the jet velocity field. In addition, the actuator operating parameters including diaphragm displacement, internal cavity pressure, and internal cavity temperature were also documented to provide boundary conditions for CFD modeling. Nomenclature d = diaphragm displacement h = jet exit slot width f = forcing frequency u = velocity component along the slot v = velocity component across the slot w = jet streamwise component x = along-slot coordinate y = across-slot coordinate z = jet streamwise coordinate p = cavity pressure T = cavity temperature Re max = Reynolds based on maximum jet velocity and slot width T

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Available abstract

An oscillatory zero net mass flow jet was generated by a cavity-pumping device, namely a synthetic jet actuator. This basic oscillating jet flow field was selected as the first of the three test cases for the Langley workshop on CFD Validation of Synthetic Jets and Turbulent Separation Control. The purpose of this workshop was to assess the current CFD capabilities to predict unsteady flow fields of synthetic jets and separation control. This paper describes the characteristics and flow field database of a synthetic jet in a quiescent fluid. In this experiment, Particle Image Velocimetry (PIV), Laser Doppler Velocimetry (LDV), and hot-wire anemometry were used to measure the jet velocity field. In addition, the actuator operating parameters including diaphragm displacement, internal cavity pressure, and internal cavity temperature were also documented to provide boundary conditions for CFD modeling. Nomenclature d = diaphragm displacement h = jet exit slot width f = forcing frequency u = velocity component along the slot v = velocity component across the slot w = jet streamwise component x = along-slot coordinate y = across-slot coordinate z = jet streamwise coordinate p = cavity pressure T = cavity temperature Re max = Reynolds based on maximum jet velocity and slot width T

Key concepts: Computational fluid dynamics, Computer science, Field (mathematics), Jet (fluid), Database, Aerospace engineering, Engineering, Mathematics

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