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http://hdl.handle.net/20.500.12666/984
Título : | Design Process and Advanced Manufacturing of an Aquatic Surface Vehicle Hull for the Integration of a Hydrogen Power Plant Propulsion System |
Autor : | Renau Martínez, Jordi García Peñas, Víctor Ibáñez Arnal, Manuel Giménez Sancho, Alberto López González, E. García Magariño, A. Terroba, F. Moreno Ayerbe, Francisco Javier Sánchez López, Fernando |
Palabras clave : | Ttimaran hull;USV hull design;3D printing manufacture;Hydrogen;Experimental fluid dynamics |
Fecha de publicación : | 1-feb-2024 |
Editorial : | Multidisciplinary Digital Publishing Institute (MDPI) |
DOI: | 10.3390/jmse12020268 |
Citación : | Journal of Marine Science and Engineering 12(2): 268(2024) |
Resumen : | This article presents the design and manufacturing of a hydrogen-powered unmanned aquatic surface vehicle (USV) hull. The design process comprised three stages: (1) defining the requirements for a preliminary geometry, (2) verifying the hydrodynamic hull performance using computational fluid dynamics (CFD) simulations, and (3) experimentally validating the hydrodynamic hull performance and CFD analysis results through experimental fluid dynamics in a calm water towing tank. The manufacturing process utilized additive manufacturing technologies, such as fused granular fabrication and selective laser sintering, to produce the hull and other components, including the propeller and the rudder; thermoplastic materials with carbon fiber reinforcement were employed. The experimental results demonstrate that the optimized trimaran hull exhibited low hydrodynamic resistance (7.5 N), high stability, and a smooth flow around the hull (up to 2 m/s). The design and manufacturing of the USV hull met expectations from both hydrodynamic and structural perspectives, and future work was outlined to integrate a power plant, navigation system, and scientific equipment. |
Descripción : | Submission received: 22 November 2023 / Revised: 22 December 2023 / Accepted: 4 January 2024 / Published: 1 February 2024. Author Contributions Conceptualization, J.R.M. and V.G.P.; methodology, F.T.R., A.G.M. and E.L.G.; formal analysis, F.T.R., A.G.M. and J.R.M.; investigation, J.R.M., V.G.P., M.I.A., A.G.S., E.L.G., A.G.M., F.T.R., F.J.M.A. and F.S.L.; resources, F.T.R. and J.R.M.; data curation, V.G.P.; writing—original draft preparation, J.R.M., A.G.M., M.I.A., F.T.R., F.J.M.A. and V.G.P.; writing—review and editing, F.S.L.; visualization, J.R.M. and V.G.P.; supervision, J.R.M.; project administration, J.R.M.; funding acquisition, J.R.M. and F.S.L. All authors have read and agreed to the published version of the manuscript. |
URI : | http://hdl.handle.net/20.500.12666/984 |
E-ISSN : | 2077-1312 |
Aparece en las colecciones: | (Naval) Artículos |
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Fichero | Descripción | Tamaño | Formato | |
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Design process and advanced manufacturing of an Aquatic surface vehicle Hull.pdf | 4,47 MB | Adobe PDF | ![]() Visualizar/Abrir |
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