Drag reduction using bionic groove surface for underwater vehicles

Introduction: The reduction of drag is a crucial concern within the shipping industry as it directly influences energy consumption. This study addresses this issue by proposing a novel approach inspired by the unique ridge structure found on killer whale skin. The objective is to develop a non-smoot...

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Published in:Frontiers in Bioengineering and Biotechnology
Main Authors: Zheng, Shihao, Liang, Xi, Li, Jiayong, Liu, Yanyan, Tang, Jun
Format: Article in Journal/Newspaper
Language:unknown
Published: Frontiers Media SA 2023
Subjects:
Online Access:http://dx.doi.org/10.3389/fbioe.2023.1223691
https://www.frontiersin.org/articles/10.3389/fbioe.2023.1223691/full
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spelling crfrontiers:10.3389/fbioe.2023.1223691 2024-04-28T08:27:20+00:00 Drag reduction using bionic groove surface for underwater vehicles Zheng, Shihao Liang, Xi Li, Jiayong Liu, Yanyan Tang, Jun 2023 http://dx.doi.org/10.3389/fbioe.2023.1223691 https://www.frontiersin.org/articles/10.3389/fbioe.2023.1223691/full unknown Frontiers Media SA https://creativecommons.org/licenses/by/4.0/ Frontiers in Bioengineering and Biotechnology volume 11 ISSN 2296-4185 Biomedical Engineering Histology Bioengineering Biotechnology journal-article 2023 crfrontiers https://doi.org/10.3389/fbioe.2023.1223691 2024-04-02T07:44:10Z Introduction: The reduction of drag is a crucial concern within the shipping industry as it directly influences energy consumption. This study addresses this issue by proposing a novel approach inspired by the unique ridge structure found on killer whale skin. The objective is to develop a non-smooth surface drag reduction method that can effectively decrease drag and improve energy efficiency for ships. Methods: The study introduces a technique involving the creation of transverse bionic groove surfaces modeled after the killer whale skin’s ridge structure. These grooves are aligned perpendicular to the flow direction and are intended to modify the behavior of turbulent boundary layer flows that form around the ship’s hull. Numerical simulations are employed using the Shear Stress Transport k-ω model to analyze the effects of the proposed groove surface across a wide range of flow conditions. The research investigates the impact of various parameters, such as the width-to-depth ratio (λ/A), groove depth, and inlet velocity, on the drag reduction performance of the bionic groove surface. Results: The study reveals several key findings. Optimal shape parameters for the bionic groove surface are determined, enabling the most effective drag reduction. The numerical simulations demonstrate that the proposed groove surface yields notable drag reduction benefits within the velocity range of 2∼12 m/s. Specifically, the friction drag reduction ratio is measured at 26.91%, and the total drag reduction ratio at 9.63%. These reductions signify a substantial decrease in the forces opposing the ship’s movement through water, leading to enhanced energy efficiency. Discussion: Comparative analysis is conducted between the performance of the bionic groove surface and that of a smooth surface. This investigation involves the examination of velocity gradient, streamwise mean velocity, and turbulent intensity. The results indicate that the bionic groove structure effectively mitigates viscous stress and Reynolds stress, which in ... Article in Journal/Newspaper Killer Whale Killer whale Frontiers (Publisher) Frontiers in Bioengineering and Biotechnology 11
institution Open Polar
collection Frontiers (Publisher)
op_collection_id crfrontiers
language unknown
topic Biomedical Engineering
Histology
Bioengineering
Biotechnology
spellingShingle Biomedical Engineering
Histology
Bioengineering
Biotechnology
Zheng, Shihao
Liang, Xi
Li, Jiayong
Liu, Yanyan
Tang, Jun
Drag reduction using bionic groove surface for underwater vehicles
topic_facet Biomedical Engineering
Histology
Bioengineering
Biotechnology
description Introduction: The reduction of drag is a crucial concern within the shipping industry as it directly influences energy consumption. This study addresses this issue by proposing a novel approach inspired by the unique ridge structure found on killer whale skin. The objective is to develop a non-smooth surface drag reduction method that can effectively decrease drag and improve energy efficiency for ships. Methods: The study introduces a technique involving the creation of transverse bionic groove surfaces modeled after the killer whale skin’s ridge structure. These grooves are aligned perpendicular to the flow direction and are intended to modify the behavior of turbulent boundary layer flows that form around the ship’s hull. Numerical simulations are employed using the Shear Stress Transport k-ω model to analyze the effects of the proposed groove surface across a wide range of flow conditions. The research investigates the impact of various parameters, such as the width-to-depth ratio (λ/A), groove depth, and inlet velocity, on the drag reduction performance of the bionic groove surface. Results: The study reveals several key findings. Optimal shape parameters for the bionic groove surface are determined, enabling the most effective drag reduction. The numerical simulations demonstrate that the proposed groove surface yields notable drag reduction benefits within the velocity range of 2∼12 m/s. Specifically, the friction drag reduction ratio is measured at 26.91%, and the total drag reduction ratio at 9.63%. These reductions signify a substantial decrease in the forces opposing the ship’s movement through water, leading to enhanced energy efficiency. Discussion: Comparative analysis is conducted between the performance of the bionic groove surface and that of a smooth surface. This investigation involves the examination of velocity gradient, streamwise mean velocity, and turbulent intensity. The results indicate that the bionic groove structure effectively mitigates viscous stress and Reynolds stress, which in ...
format Article in Journal/Newspaper
author Zheng, Shihao
Liang, Xi
Li, Jiayong
Liu, Yanyan
Tang, Jun
author_facet Zheng, Shihao
Liang, Xi
Li, Jiayong
Liu, Yanyan
Tang, Jun
author_sort Zheng, Shihao
title Drag reduction using bionic groove surface for underwater vehicles
title_short Drag reduction using bionic groove surface for underwater vehicles
title_full Drag reduction using bionic groove surface for underwater vehicles
title_fullStr Drag reduction using bionic groove surface for underwater vehicles
title_full_unstemmed Drag reduction using bionic groove surface for underwater vehicles
title_sort drag reduction using bionic groove surface for underwater vehicles
publisher Frontiers Media SA
publishDate 2023
url http://dx.doi.org/10.3389/fbioe.2023.1223691
https://www.frontiersin.org/articles/10.3389/fbioe.2023.1223691/full
genre Killer Whale
Killer whale
genre_facet Killer Whale
Killer whale
op_source Frontiers in Bioengineering and Biotechnology
volume 11
ISSN 2296-4185
op_rights https://creativecommons.org/licenses/by/4.0/
op_doi https://doi.org/10.3389/fbioe.2023.1223691
container_title Frontiers in Bioengineering and Biotechnology
container_volume 11
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