A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions

The transition towards Net Zero Emissions (NZEs) is being accelerated by hybrid renewable technologies such as Floating Photovoltaic (FPV) systems and marine current turbines, which combine solar panels and cross-flow marine turbines mounted on floating structures for near-shore applications. Despit...

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Main Authors: Ramsy de Fretes Patrick, Izzuddin Jifaturrohman Mohammad, Putranto Teguh, Aria Pria Utama I Ketut, Huang Luofeng
Format: Article
Language:English
Published: EDP Sciences 2025-01-01
Series:BIO Web of Conferences
Online Access:https://www.bio-conferences.org/articles/bioconf/pdf/2025/08/bioconf_srcm24_10001.pdf
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author Ramsy de Fretes Patrick
Izzuddin Jifaturrohman Mohammad
Putranto Teguh
Aria Pria Utama I Ketut
Huang Luofeng
author_facet Ramsy de Fretes Patrick
Izzuddin Jifaturrohman Mohammad
Putranto Teguh
Aria Pria Utama I Ketut
Huang Luofeng
author_sort Ramsy de Fretes Patrick
collection DOAJ
description The transition towards Net Zero Emissions (NZEs) is being accelerated by hybrid renewable technologies such as Floating Photovoltaic (FPV) systems and marine current turbines, which combine solar panels and cross-flow marine turbines mounted on floating structures for near-shore applications. Despite their innovative potential, these renewable technologies face significant challenges in stability and durability due to the effects of wind, waves, and ocean currents. Therefore, a flexible mooring system is essential to address these challenges. This research examines the influence of variations in the number of mooring lines and wave direction on the hydrodynamic response of FPV systems. Utilizing a catenary mooring system consisting of anchors, mooring lines, floats, and connectors, the study evaluates various configurations to determine the optimal solution for enhanced motion stability. Computational Fluid Dynamics (CFD) simulations are employed to analyze the dynamic response of FPV systems under different environmental conditions, represented on a sea-state scale, with a focus on pure oscillatory motions: heave, roll, and pitch. The findings aim to provide valuable insights for the design and operation of more stable and efficient FPV systems in marine environments, thereby supporting the advancement of sustainable renewable energy.
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institution Kabale University
issn 2117-4458
language English
publishDate 2025-01-01
publisher EDP Sciences
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series BIO Web of Conferences
spelling doaj-art-5acb695f59f2426da4a560ea9ef038d52025-02-07T08:20:29ZengEDP SciencesBIO Web of Conferences2117-44582025-01-011571000110.1051/bioconf/202515710001bioconf_srcm24_10001A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored ConditionsRamsy de Fretes Patrick0Izzuddin Jifaturrohman Mohammad1Putranto Teguh2Aria Pria Utama I Ketut3Huang Luofeng4Department of Naval Architecture, Faculty of Marine Technology, Institut Teknologi Sepuluh NopemberDepartment of Ocean Engineering, Faculty of Marine Technology, Institut Teknologi Sepuluh NopemberDepartment of Naval Architecture, Faculty of Marine Technology, Institut Teknologi Sepuluh NopemberDepartment of Naval Architecture, Faculty of Marine Technology, Institut Teknologi Sepuluh NopemberFaculty of Engineering and Applied Sciences, Cranfield UniversityThe transition towards Net Zero Emissions (NZEs) is being accelerated by hybrid renewable technologies such as Floating Photovoltaic (FPV) systems and marine current turbines, which combine solar panels and cross-flow marine turbines mounted on floating structures for near-shore applications. Despite their innovative potential, these renewable technologies face significant challenges in stability and durability due to the effects of wind, waves, and ocean currents. Therefore, a flexible mooring system is essential to address these challenges. This research examines the influence of variations in the number of mooring lines and wave direction on the hydrodynamic response of FPV systems. Utilizing a catenary mooring system consisting of anchors, mooring lines, floats, and connectors, the study evaluates various configurations to determine the optimal solution for enhanced motion stability. Computational Fluid Dynamics (CFD) simulations are employed to analyze the dynamic response of FPV systems under different environmental conditions, represented on a sea-state scale, with a focus on pure oscillatory motions: heave, roll, and pitch. The findings aim to provide valuable insights for the design and operation of more stable and efficient FPV systems in marine environments, thereby supporting the advancement of sustainable renewable energy.https://www.bio-conferences.org/articles/bioconf/pdf/2025/08/bioconf_srcm24_10001.pdf
spellingShingle Ramsy de Fretes Patrick
Izzuddin Jifaturrohman Mohammad
Putranto Teguh
Aria Pria Utama I Ketut
Huang Luofeng
A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions
BIO Web of Conferences
title A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions
title_full A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions
title_fullStr A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions
title_full_unstemmed A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions
title_short A Study of the Motion Response of Floating Solar PV and Cross-Flow Savonius Turbine in Moored Conditions
title_sort study of the motion response of floating solar pv and cross flow savonius turbine in moored conditions
url https://www.bio-conferences.org/articles/bioconf/pdf/2025/08/bioconf_srcm24_10001.pdf
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