Lock-in occurs between many different types of flow instabilities and structural-acoustic resonators. Factors that describe the coupling between the fluid and structure have been defined for low flow Mach numbers. This paper discusses how different flow instabilities influence lock-in experimentally and analytically. A key concept to the lock-in process is the relative source generation versus dissipation. The type of fluid instability source dominates the generation component of the process, so a comparison between a cavity shear layer instability with a relatively stronger source, for example wake vortex shedding from a bluff body, will be described as a coupling factor. In the fluid-elastic cavity lock-in case, the shear layer instability produced by flow over a cavity couples to the elastic structure containing the cavity. In this study, this type of lock-in was not achieved experimentally. A stronger source, vortex shedding from a bluff body however, is shown experimentally to locks into the same resonator. This study shows that fluid-elastic cavity lock-in is unlikely to occur given the critical level of damping that exists for a submerged structure and the relatively weak source strength that a cavity produces. Also in this paper, a unified theory is presented based on describing functions, a nonlinear control theory used to predict limit cycles of oscillation, where a self-sustaining oscillation or lock-in is possible. The describing function models capture the primary characteristics of the instability mechanisms, are consistent with Strouhal frequency concepts, capture damping, and are consistent with mass-damping concepts from wake oscillator theory. This study shows a strong consistency between the analytical models and experimental results.
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ASME 2008 Noise Control and Acoustics Division Conference
July 28–30, 2008
Dearborn, Michigan, USA
Conference Sponsors:
- Noise Control and Acoustics Division
ISBN:
0-7918-4839-6
PROCEEDINGS PAPER
The Influence of Flow Instability on the Lock-In of Distributed Elastic Resonators
Kristin Lai-Fook Cody,
Kristin Lai-Fook Cody
Lockheed-Martin, Inc., Schenectady, NY
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Stephen A. Hambric,
Stephen A. Hambric
ARL/Penn State, State College, PA
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Martin L. Pollack,
Martin L. Pollack
Applied Physical Sciences Corp., Groton, CT
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Michael L. Jonson
Michael L. Jonson
ARL/Penn State, State College, PA
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Kristin Lai-Fook Cody
Lockheed-Martin, Inc., Schenectady, NY
Stephen A. Hambric
ARL/Penn State, State College, PA
Martin L. Pollack
Applied Physical Sciences Corp., Groton, CT
Michael L. Jonson
ARL/Penn State, State College, PA
Paper No:
NCAD2008-73016, pp. 17-29; 13 pages
Published Online:
June 22, 2009
Citation
Cody, KL, Hambric, SA, Pollack, ML, & Jonson, ML. "The Influence of Flow Instability on the Lock-In of Distributed Elastic Resonators." Proceedings of the ASME 2008 Noise Control and Acoustics Division Conference. ASME 2008 Noise Control and Acoustics Division Conference. Dearborn, Michigan, USA. July 28–30, 2008. pp. 17-29. ASME. https://doi.org/10.1115/NCAD2008-73016
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