Lock-on of vortex shedding to a pair of synthetic jets with phase difference

This paper furthers our understanding of lock-on that is induced by periodic external forcing. The effect of forcing phase difference is investigated. An extended linear theory is proposed to predict the centers of various lock-on regimes, including harmonic, subharmonic, and superharmonic lock-on,...

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Main Authors: Wang, Chenglei, Tang, Hui, Yu, Simon C. M., Duan, Fei
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2018
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Online Access:https://hdl.handle.net/10356/85955
http://hdl.handle.net/10220/45373
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-859552023-03-04T17:16:04Z Lock-on of vortex shedding to a pair of synthetic jets with phase difference Wang, Chenglei Tang, Hui Yu, Simon C. M. Duan, Fei School of Mechanical and Aerospace Engineering Vortex Flow Stability Analysis This paper furthers our understanding of lock-on that is induced by periodic external forcing. The effect of forcing phase difference is investigated. An extended linear theory is proposed to predict the centers of various lock-on regimes, including harmonic, subharmonic, and superharmonic lock-on, in a parametric map spanned by the forcing frequency and phase difference. It reveals that when the forcing frequency is equal to the natural vortex shedding frequency or its integer multiple, harmonic or subharmonic lock-on occurs at particular forcing phase differences, whereas when the forcing frequency is a submultiple of the natural shedding frequency, superharmonic lock-on occurs. To confirm this theory and also further determine the shape and size of each lock-on regime, a series of numerical simulations is conducted on a circular-cylinder flow system with periodic external forcing being realized by a pair of synthetic jets (SJs). At a Reynolds number 100 and under moderate SJ forcing, five lock-on regimes are captured, including the primary, secondary, tertiary, and first- and second-superharmonic lock-on. It is found that these lock-on regimes are generally in a rhomboidal shape, and their size gradually reduces when the SJ frequency is away from the natural vortex shedding frequency. With these simulations, the aerodynamic forces and wake formation in each lock-on regime are analyzed and compared, with the discussion being focused on the effects of SJ frequency and phase difference. Furthermore, stability analysis is conducted to reveal more flow physics related to lock-on. Published version 2018-07-30T06:19:26Z 2019-12-06T16:13:23Z 2018-07-30T06:19:26Z 2019-12-06T16:13:23Z 2017 Journal Article Wang, C., Tang, H., Yu, S. C. M., & Duan, F. (2017). Lock-on of vortex shedding to a pair of synthetic jets with phase difference. Physical Review Fluids, 2(10), 104701-. https://hdl.handle.net/10356/85955 http://hdl.handle.net/10220/45373 10.1103/PhysRevFluids.2.104701 en Physical Review Fluids © 2017 American Physical Society (APS). This paper was published in Physical Review Fluids and is made available as an electronic reprint (preprint) with permission of American Physical Society (APS). The published version is available at: [http://dx.doi.org/10.1103/PhysRevFluids.2.104701]. One print or electronic copy may be made for personal use only. Systematic or multiple reproduction, distribution to multiple locations via electronic or other means, duplication of any material in this paper for a fee or for commercial purposes, or modification of the content of the paper is prohibited and is subject to penalties under law. 26 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Vortex Flow
Stability Analysis
spellingShingle Vortex Flow
Stability Analysis
Wang, Chenglei
Tang, Hui
Yu, Simon C. M.
Duan, Fei
Lock-on of vortex shedding to a pair of synthetic jets with phase difference
description This paper furthers our understanding of lock-on that is induced by periodic external forcing. The effect of forcing phase difference is investigated. An extended linear theory is proposed to predict the centers of various lock-on regimes, including harmonic, subharmonic, and superharmonic lock-on, in a parametric map spanned by the forcing frequency and phase difference. It reveals that when the forcing frequency is equal to the natural vortex shedding frequency or its integer multiple, harmonic or subharmonic lock-on occurs at particular forcing phase differences, whereas when the forcing frequency is a submultiple of the natural shedding frequency, superharmonic lock-on occurs. To confirm this theory and also further determine the shape and size of each lock-on regime, a series of numerical simulations is conducted on a circular-cylinder flow system with periodic external forcing being realized by a pair of synthetic jets (SJs). At a Reynolds number 100 and under moderate SJ forcing, five lock-on regimes are captured, including the primary, secondary, tertiary, and first- and second-superharmonic lock-on. It is found that these lock-on regimes are generally in a rhomboidal shape, and their size gradually reduces when the SJ frequency is away from the natural vortex shedding frequency. With these simulations, the aerodynamic forces and wake formation in each lock-on regime are analyzed and compared, with the discussion being focused on the effects of SJ frequency and phase difference. Furthermore, stability analysis is conducted to reveal more flow physics related to lock-on.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Wang, Chenglei
Tang, Hui
Yu, Simon C. M.
Duan, Fei
format Article
author Wang, Chenglei
Tang, Hui
Yu, Simon C. M.
Duan, Fei
author_sort Wang, Chenglei
title Lock-on of vortex shedding to a pair of synthetic jets with phase difference
title_short Lock-on of vortex shedding to a pair of synthetic jets with phase difference
title_full Lock-on of vortex shedding to a pair of synthetic jets with phase difference
title_fullStr Lock-on of vortex shedding to a pair of synthetic jets with phase difference
title_full_unstemmed Lock-on of vortex shedding to a pair of synthetic jets with phase difference
title_sort lock-on of vortex shedding to a pair of synthetic jets with phase difference
publishDate 2018
url https://hdl.handle.net/10356/85955
http://hdl.handle.net/10220/45373
_version_ 1759855425418690560