Acoustic power generated by turbulent flow over a coaxial side branch (deep cavity) resonator mounted in a rectangular duct is calculated using a semiempirical approach. Instantaneous flow velocity is decomposed into an irrotational acoustic component and vorticity-bearing hydrodynamic field. The total velocity at several phases of the acoustic oscillation cycle is measured using digital particle image velocimetry. The acoustic velocity field is numerically calculated. The emphasis is on the effect of the accurate geometry representation for the acoustic field modeling on the calculated acoustic power. Despite the generally low levels of acoustic radiation from the coaxial side branches, when the main duct is incorporated into the model for calculation of the acoustic velocity, the acoustic velocity exhibits substantial horizontal (streamwise) components in the vicinity of the cavity corners. This streamwise acoustic velocity correlates with hydrodynamic horizontal velocity fluctuations, thus contributing to the calculated acoustic power. Spatial structure and strength of the acoustic source change as the distance between the side branches varies. Global quantitative imaging approach is used to characterize the transformation of the acoustic source structure in terms of patterns of instantaneous and phase-averaged flow velocity, vorticity, and streamline topology as well as time-averaged acoustic power.
Skip Nav Destination
e-mail: poshkai@me.uvic.ca
Article navigation
Research Papers
Acoustic Power Calculation in Deep Cavity Flows: A Semiempirical Approach
P. Oshkai,
P. Oshkai
Department of Mechanical Engineering,
e-mail: poshkai@me.uvic.ca
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6
Search for other works by this author on:
T. Yan,
T. Yan
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6
Search for other works by this author on:
A. Velikorodny,
A. Velikorodny
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6
Search for other works by this author on:
S. VanCaeseele
S. VanCaeseele
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6
Search for other works by this author on:
P. Oshkai
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6e-mail: poshkai@me.uvic.ca
T. Yan
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6
A. Velikorodny
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6
S. VanCaeseele
Department of Mechanical Engineering,
University of Victoria
, P.O. Box 3055 STN CSC, Victoria, BC, Canada, V8W 3P6J. Fluids Eng. May 2008, 130(5): 051203 (9 pages)
Published Online: May 1, 2008
Article history
Received:
July 12, 2007
Revised:
February 8, 2008
Published:
May 1, 2008
Citation
Oshkai, P., Yan, T., Velikorodny, A., and VanCaeseele, S. (May 1, 2008). "Acoustic Power Calculation in Deep Cavity Flows: A Semiempirical Approach." ASME. J. Fluids Eng. May 2008; 130(5): 051203. https://doi.org/10.1115/1.2907413
Download citation file:
Get Email Alerts
Development and Validation of Machine-Learned Actuator Line Model for Hydrokinetic Turbine Rotor
J. Fluids Eng (August 2025)
Investigation of the Surface Pressure and Thrust Generated by a Tilt Distributed Electric Propulsion Wing
J. Fluids Eng (August 2025)
Related Articles
Large Eddy Simulation of Flow and Heat Transfer in the 180 ‐ Deg Bend Region of a Stationary Gas Turbine Blade Ribbed Internal Cooling Duct
J. Turbomach (October,2006)
The Application of Low-Profile Vortex Generators in an Intermediate Turbine Diffuser
J. Turbomach (January,2012)
Velocity and Turbulence Characteristics of Isothermal Lobed Mixer Flows
J. Fluids Eng (December,1995)
Related Proceedings Papers
Related Chapters
Fluidelastic Instability of Tube Bundles in Single-Phase Flow
Flow-Induced Vibration Handbook for Nuclear and Process Equipment
Cavitating Structures at Inception in Turbulent Shear Flow
Proceedings of the 10th International Symposium on Cavitation (CAV2018)
Periodic Wake Shedding and Acoustic Resonance
Flow-Induced Vibration Handbook for Nuclear and Process Equipment