An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects

To design artificial reef (ARs) structures that can provide better habitats for fish, extensive research has been conducted on the flow field effects of ARs with different structures. The evaluation indices of the flow field effects include upwelling and back vortex flow. However, there has been lit...

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Main Authors: Qiaofeng Ma, Jian Ding, Yanbin Xi, Jun Song, Shuxiu Liang, Ruijin Zhang
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-09-01
Series:Frontiers in Marine Science
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmars.2022.962821/full
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author Qiaofeng Ma
Jian Ding
Jian Ding
Yanbin Xi
Jun Song
Jun Song
Shuxiu Liang
Ruijin Zhang
Ruijin Zhang
author_facet Qiaofeng Ma
Jian Ding
Jian Ding
Yanbin Xi
Jun Song
Jun Song
Shuxiu Liang
Ruijin Zhang
Ruijin Zhang
author_sort Qiaofeng Ma
collection DOAJ
description To design artificial reef (ARs) structures that can provide better habitats for fish, extensive research has been conducted on the flow field effects of ARs with different structures. The evaluation indices of the flow field effects include upwelling and back vortex flow. However, there has been little quantitative analysis of these two indices. In addition, several studies have suggested that other flow field characteristics of ARs can aid in providing habitats for fish. To evaluate the flow field effects of ARs more comprehensively, the following work was conducted in this study. First, the flow field of the solid cubic AR was simulated using a computational fluid dynamics (CFD)-based software (Fluent), and based on the particle image velocimetry (PIV) approach, these simulation results were verified by flume experiments. Next, the flow fields of ARs with other structures (hollow cube, solid triangular pyramid, hollow triangular pyramid, solid truncated rectangular pyramid, and hollow truncated rectangular pyramid) were simulated using the verified numerical model. Subsequently, based on the analytic hierarchy process (AHP) approach, an evaluation model with six evaluation indices of the flow field effect of ARs (upwelling region, wake region, surface area of ARs, upper slow-flowing area, lateral slow-flowing area, and internal velocity of ARs) was established, and the weights of the evaluation indices were determined using the entropy weight method (EWM). Finally, to determine the structure of ARs with optimal flow field effects, the evaluation model was used for evaluating the flow field effects of all ARs. The superiority and ranking of the flow field effects of all ARs were calculated using the fuzzy comprehensive evaluation (FCE) method. This study provides a theoretical basis and reference for the optimization of AR structures.
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spelling doaj.art-8dd366b7e8ab49b3a9bfe33f543da5d82022-12-22T04:25:53ZengFrontiers Media S.A.Frontiers in Marine Science2296-77452022-09-01910.3389/fmars.2022.962821962821An evaluation method for determining the optimal structure of artificial reefs based on their flow field effectsQiaofeng Ma0Jian Ding1Jian Ding2Yanbin Xi3Jun Song4Jun Song5Shuxiu Liang6Ruijin Zhang7Ruijin Zhang8State Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian, ChinaSchool of Marine Science and Environment Engineering, Dalian Ocean University, Dalian, ChinaOperational Oceanographic Institution, Dalian Ocean University, Dalian, ChinaNational Marine Environmental Monitoring Center, Dalian, ChinaSchool of Marine Science and Environment Engineering, Dalian Ocean University, Dalian, ChinaOperational Oceanographic Institution, Dalian Ocean University, Dalian, ChinaState Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian, ChinaSchool of Marine Science and Environment Engineering, Dalian Ocean University, Dalian, ChinaOperational Oceanographic Institution, Dalian Ocean University, Dalian, ChinaTo design artificial reef (ARs) structures that can provide better habitats for fish, extensive research has been conducted on the flow field effects of ARs with different structures. The evaluation indices of the flow field effects include upwelling and back vortex flow. However, there has been little quantitative analysis of these two indices. In addition, several studies have suggested that other flow field characteristics of ARs can aid in providing habitats for fish. To evaluate the flow field effects of ARs more comprehensively, the following work was conducted in this study. First, the flow field of the solid cubic AR was simulated using a computational fluid dynamics (CFD)-based software (Fluent), and based on the particle image velocimetry (PIV) approach, these simulation results were verified by flume experiments. Next, the flow fields of ARs with other structures (hollow cube, solid triangular pyramid, hollow triangular pyramid, solid truncated rectangular pyramid, and hollow truncated rectangular pyramid) were simulated using the verified numerical model. Subsequently, based on the analytic hierarchy process (AHP) approach, an evaluation model with six evaluation indices of the flow field effect of ARs (upwelling region, wake region, surface area of ARs, upper slow-flowing area, lateral slow-flowing area, and internal velocity of ARs) was established, and the weights of the evaluation indices were determined using the entropy weight method (EWM). Finally, to determine the structure of ARs with optimal flow field effects, the evaluation model was used for evaluating the flow field effects of all ARs. The superiority and ranking of the flow field effects of all ARs were calculated using the fuzzy comprehensive evaluation (FCE) method. This study provides a theoretical basis and reference for the optimization of AR structures.https://www.frontiersin.org/articles/10.3389/fmars.2022.962821/fullartificial reefPIV flume experimentnumerical simulationflow fieldfuzzy comprehensive evaluation
spellingShingle Qiaofeng Ma
Jian Ding
Jian Ding
Yanbin Xi
Jun Song
Jun Song
Shuxiu Liang
Ruijin Zhang
Ruijin Zhang
An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
Frontiers in Marine Science
artificial reef
PIV flume experiment
numerical simulation
flow field
fuzzy comprehensive evaluation
title An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
title_full An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
title_fullStr An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
title_full_unstemmed An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
title_short An evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
title_sort evaluation method for determining the optimal structure of artificial reefs based on their flow field effects
topic artificial reef
PIV flume experiment
numerical simulation
flow field
fuzzy comprehensive evaluation
url https://www.frontiersin.org/articles/10.3389/fmars.2022.962821/full
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