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- W3113128896 abstract "In this study, a successful hybrid model is presented for the simulation of flow induced vibrations. The novel Fluid-Structure Interaction framework relies on split-forcing Lattice Boltzmann Method (LBM) and Immersed Boundary Method (IBM), which are combined with a novel explicit Lattice Spring Model (LSM). The solver is validated against two benchmarks which include fluid interacting with a rigid cylinder and a finned circle attached in the middle of a channel. The role of flexibility on the filaments flapping in a free-stream at different Reynolds numbers is investigated. It is found that for a single filament flapping in a fluid flow, increasing flexibility do not always increases vibration amplitudes and can surprisingly decrease fluctuations if flexibility exceed a specific value. This interplay stems from flapping frequencies as they approach the natural frequency of the filament, creating resonance. Also, fluid structure interaction of three side-by-side filaments with different separate distancing values Dp/L in the free-stream are studied in the results section. The data highlights that for the Dp/L < 0.2 case, filaments act as a single filament while larger values form diffuser and nozzle shapes, which affect the fluid flow acceleration. Finally, we investigate the effects of separation distance has for the case in which filaments are arranged linearly. It is found that filaments can be synchronized to propel in phase with the same frequency if particular gaps are considered between filaments." @default.
- W3113128896 created "2020-12-21" @default.
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- W3113128896 date "2021-02-01" @default.
- W3113128896 modified "2023-10-16" @default.
- W3113128896 title "Fluid-structure interaction for the flexible filament's propulsion hanging in the free stream" @default.
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- W3113128896 doi "https://doi.org/10.1016/j.molliq.2020.114941" @default.
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