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Autori principali: Fowler, Crystal, Marshall, Rehan, Son, Maeji, Jung, Sunghwan
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2406.18830
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author Fowler, Crystal
Marshall, Rehan
Son, Maeji
Jung, Sunghwan
author_facet Fowler, Crystal
Marshall, Rehan
Son, Maeji
Jung, Sunghwan
contents In this study, we investigated the dynamics of a droplet impacting and oscillating a polycarbonate cantilever beam of nine varying lengths. We analyzed the cantilever's damping and vibration frequency in relation to a resonance length, where the frequencies of the droplet and the cantilever are equal. In the pre-resonance length, the beam vibrates at a frequency higher than that of the droplet. Upon reaching resonance, the frequencies of both the droplet and the cantilever align, and the cantilever is out of phase with the oscillation of the droplet's apex. This leads to increased damping rates. At this resonance length, the droplet's force and the direction of the cantilever oppose each other. When the cantilever length exceeds the resonance length, it synchronize more with the droplet apex. This alignment allows the droplet force and the cantilever to work in phase. Our findings provide fundamental insights into the damping effect of droplet impacts on elastic surfaces around resonance.
format Preprint
id arxiv_https___arxiv_org_abs_2406_18830
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Resonance and Damping in Drop-Cantilever Interactions
Fowler, Crystal
Marshall, Rehan
Son, Maeji
Jung, Sunghwan
Fluid Dynamics
In this study, we investigated the dynamics of a droplet impacting and oscillating a polycarbonate cantilever beam of nine varying lengths. We analyzed the cantilever's damping and vibration frequency in relation to a resonance length, where the frequencies of the droplet and the cantilever are equal. In the pre-resonance length, the beam vibrates at a frequency higher than that of the droplet. Upon reaching resonance, the frequencies of both the droplet and the cantilever align, and the cantilever is out of phase with the oscillation of the droplet's apex. This leads to increased damping rates. At this resonance length, the droplet's force and the direction of the cantilever oppose each other. When the cantilever length exceeds the resonance length, it synchronize more with the droplet apex. This alignment allows the droplet force and the cantilever to work in phase. Our findings provide fundamental insights into the damping effect of droplet impacts on elastic surfaces around resonance.
title Resonance and Damping in Drop-Cantilever Interactions
topic Fluid Dynamics
url https://arxiv.org/abs/2406.18830