Exploring wave–vegetation interaction at stem scale: analysis of the coupled flow–structure interactions using the SPH-Based DualSPHysics code and the FEA module of chrono

Aquatic vegetation in the littoral zone plays a crucial role in attenuating wave energy and protecting coastal communities from hazardous events. This study contributes to the development of numerical models aimed at designing nature-based coastal defense systems. Specifically, a novel numerical app...

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Detalles Bibliográficos
Autores: El Rahi, Joe, Martinez Estevez, Ivan, Almeida Reis, Rui, Tagliafierro, Bonaventura|||0000-0001-9171-3038, Dominguez, Jose Maria, Crespo, Alejandro J.C., Stratigaki, Vasiliki, Suzuki, Tomohiro, Troch, Peter
Tipo de recurso: artículo
Fecha de publicación:2024
País:España
Institución:Universitat Politècnica de Catalunya (UPC)
Repositorio:UPCommons. Portal del coneixement obert de la UPC
Idioma:inglés
OAI Identifier:oai:upcommons.upc.edu:2117/420787
Acceso en línea:https://hdl.handle.net/2117/420787
https://dx.doi.org/10.3390/jmse12071120
Access Level:acceso abierto
Palabra clave:Wave–Vegetation interaction
Flexible structure
Fluid–Elastic structure interaction
SPH-FEA coupling
DualSPHysics
Project chrono
Àrees temàtiques de la UPC::Enginyeria civil::Enginyeria hidràulica, marítima i sanitària::Ports i costes
Descripción
Sumario:Aquatic vegetation in the littoral zone plays a crucial role in attenuating wave energy and protecting coastal communities from hazardous events. This study contributes to the development of numerical models aimed at designing nature-based coastal defense systems. Specifically, a novel numerical application for simulating wave–vegetation interactions at the stem scale is presented. The numerical model employed, DualSPHysics, couples the meshfree Smoothed Particle Hydrodynamics (SPH) fluid solver with a structural solver to accurately capture the two-way interactions between waves and flexible vegetation. The proposed numerical model is validated against experimental data involving a submerged rubber cylinder representing an individual vegetation stem, subjected to regular waves. The results demonstrate excellent agreement in hydrodynamics, force transfer, and the swaying motion of the flexible cylinder. Importantly, the approach explicitly captures energy transfer between the fluid environment and the individual stem. The numerical results indicate persistent turbulent flow along the vegetation stem, even when its swaying speed matches that of the surrounding environment. This reveals the presence of vortex shedding and energy dissipation, which challenges the concept of passive swaying in flexible aquatic vegetation.