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High-fidelity simulation of a novel rope-mesh structure for a floating photovoltaic array in waves

dc.contributor.authorNair, Aditya
dc.contributor.authorMi, Chenhao
dc.contributor.authorVerdin, Patrick G.
dc.contributor.authorHuang, Luofeng
dc.date.accessioned2026-04-29T10:44:32Z
dc.date.available2026-04-29T10:44:32Z
dc.date.freetoread2026-04-29
dc.date.issued2026-07-15
dc.date.pubOnline2026-04-08
dc.description.abstractFloating photovoltaic (FPV) systems offer a promising route for expanding solar generation in coastal and offshore water bodies. However, wave-induced motion, mooring loads, and inter-module forces govern their viability. Excessive motion reduces energy yield, amplifies connector and mooring tensions, and threatens long-term reliability, making accurate hydrodynamic prediction essential for design. Most current CFD studies focus on single-row floaters, typically barge or catamaran-type platforms connected by rigid or hinged connections, leaving the behaviour of multi-row FPVs with compliant inter-module connections largely unexplored. This study develops and validates a high-fidelity CFD framework for rope-mesh FPV arrays, implementing a novel in-memory spring-connector formulation within OpenFOAM's rigidBodyMotion framework to represent compliant, tensioned rope connections. The approach is validated against wave tank experiments for both single-module and 2×2 array configurations. Validation demonstrates excellent accuracy, with heave and pitch RAO errors within 5–13% across wavelengths. The framework successfully captures multi-body interaction effects, including wave-field shielding that reduces aft-row response by upto 10%. Direct comparison demonstrates that conventional rigid joints underpredict pitch by over 20% and overestimate heave by 18%, while the spring connector maintains errors within 5–13%, confirming the necessity of force-based compliant coupling for accurate rope-mesh FPV prediction. Connector force analysis reveals that streamwise connectors experience forces 3–5 times larger than transverse connectors, with peak forces occurring at λ/L ≈ 2.5–3.5, where phase differences maximise differential motion between rows. These results establish streamwise connections as the critical design drivers for rope-mesh FPV systems under head-sea loading.
dc.description.journalNameMarine Structures
dc.identifier.citationNair A, Mi C, Verdin PG, Huang L. (2026) High-fidelity simulation of a novel rope-mesh structure for a floating photovoltaic array in waves. Marine Structures, Volume 109, July 2026, Article number 104089en_UK
dc.identifier.elementsID870194
dc.identifier.issn0951-8339
dc.identifier.paperNo104089
dc.identifier.urihttps://doi.org/10.1016/j.marstruc.2026.104089
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/25151
dc.identifier.volumeNo109
dc.languageEnglish
dc.language.isoen
dc.publisherElsevieren_UK
dc.publisher.urihttps://www.sciencedirect.com/science/article/pii/S0951833926000833?via%3Dihub
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subject4005 Civil engineeringen_UK
dc.subject4015 Maritime engineeringen_UK
dc.subject4017 Mechanical engineeringen_UK
dc.subjectFloating solar farmsen_UK
dc.subjectHydrodynamicsen_UK
dc.subjectComputational Fluid Dynamicsen_UK
dc.subjectOpenFOAMen_UK
dc.titleHigh-fidelity simulation of a novel rope-mesh structure for a floating photovoltaic array in wavesen_UK
dc.typeArticle
dcterms.dateAccepted2026-03-27

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