Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/111057
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Title: Ground-induced suppression of chaos in the self-excited flow behind a plunging airfoil
Authors: Chung, RCC
Guan, Y 
He, W
Ao, W
Yin, B
Yang, Z
Doranehgard, MH
Li, LKB
Issue Date: Mar-2024
Source: Physics of fluids, Mar. 2024, v. 36, no. 3, 034111, p. 034111-1 - 034111-11
Abstract: We numerically investigate the forced synchronization of the self-excited flow behind a plunging airfoil in ground effect at a Reynolds number of Re = 1000. On varying the plunging amplitude and frequency, we find a rich array of nonlinear dynamics, such as a period-1 limit cycle due to natural vortex shedding as well as two-frequency quasiperiodicity on a torus attractor ( T 2 ). For certain non-resonant plunging frequencies without a ground surface, we find that low-dimensional chaos emerges via the Ruelle-Takens-Newhouse route. However, we find that the chaos can be suppressed by introducing a ground surface, inducing a direct transition from T 2 quasiperiodicity to 1:1 phase locking as the plunging amplitude rises over the boundaries of the Arnold tongue. Apart from suppressing chaos, the ground surface also causes the lift and drag coefficients to become less sensitive to the plunging motion itself. Knowledge of the critical plunging conditions required for forced synchronization and chaos could be useful in various engineering applications, such as the design of pico air vehicles.
Publisher: AIP Publishing LLC
Journal: Physics of fluids 
ISSN: 1070-6631
EISSN: 1089-7666
DOI: 10.1063/5.0195683
Rights: © 2024 Author(s). Published under an exclusive license by AIP Publishing.
This article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. This article appeared in Richard C. C. Chung, Yu Guan, Wei He, Wen Ao, Bo Yin, Zhijian Yang, Mohammad Hossein Doranehgard, Larry K. B. Li; Ground-induced suppression of chaos in the self-excited flow behind a plunging airfoil. Physics of Fluids 1 March 2024; 36 (3): 034111 and may be found at https://dx.doi.org/10.1063/5.0195683.
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