Design and Formulation of a Hydromechanical Fin for AUV Operations and Wave Parameter Estimation

Fuente: arXiv
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Main Author: Unikewicz, Brendan M.
Format: Preprint
Published: 2023
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author Unikewicz, Brendan M.
author_facet Unikewicz, Brendan M.
contents Ocean dynamics play a crucial role in global climate, ecosystems, and human activities, necessitating accurate and efficient methods to characterize ocean currents and waves. This paper presents the development of a novel bio-inspired hydrofoil system for detecting and characterizing ocean currents and waves based on a dolphin's flipper foil design. The prototype's performance was assessed through controlled experiments, demonstrating the system's ability to quickly and accurately orientate itself in the direction of flow. Wave mechanics and a geometric proof were applied to estimate wave parameters such as wave height and current from the hydrofoil's positioning. The proposed hydrofoil system shows potential for use in various marine applications, including oceanographic research, environmental monitoring, and navigation. The bio-inspired hydrofoil system offers a promising approach to ocean current and wave characterization, with the potential to significantly impact our understanding and monitoring of ocean dynamics without greatly impacting vehicle performance or increasing power utilization in operation.
format Preprint
id arxiv_https___arxiv_org_abs_2306_08091
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Design and Formulation of a Hydromechanical Fin for AUV Operations and Wave Parameter Estimation
Unikewicz, Brendan M.
Fluid Dynamics
Systems and Control
Ocean dynamics play a crucial role in global climate, ecosystems, and human activities, necessitating accurate and efficient methods to characterize ocean currents and waves. This paper presents the development of a novel bio-inspired hydrofoil system for detecting and characterizing ocean currents and waves based on a dolphin's flipper foil design. The prototype's performance was assessed through controlled experiments, demonstrating the system's ability to quickly and accurately orientate itself in the direction of flow. Wave mechanics and a geometric proof were applied to estimate wave parameters such as wave height and current from the hydrofoil's positioning. The proposed hydrofoil system shows potential for use in various marine applications, including oceanographic research, environmental monitoring, and navigation. The bio-inspired hydrofoil system offers a promising approach to ocean current and wave characterization, with the potential to significantly impact our understanding and monitoring of ocean dynamics without greatly impacting vehicle performance or increasing power utilization in operation.
title Design and Formulation of a Hydromechanical Fin for AUV Operations and Wave Parameter Estimation
topic Fluid Dynamics
Systems and Control
url https://arxiv.org/abs/2306.08091