Wave Performance Study of a Rapidly Deployable and Foldable Offshore Floating Photovoltaic System

Penulis

  • Tingting Zhu Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin, China
  • Xu Zhao Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin, China
  • Yanan Xu Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin, China
  • Hanbao Chen Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin, China

DOI:

https://doi.org/10.33751/teknik.v27i1.47

Kata Kunci:

Offshore floating photovoltaics; Foldable structures; Rapid deployment; Wave resistance

Abstrak

Based on completed and planned installed capacity, offshore photovoltaics (PV) have emerged as a new form of “Marine plus Renewable Energy” productivity, ranking second only to offshore wind power in China. Existing offshore floating PV solutions typically adopt semi-submersible platform derived from the traditional marine engineering industry, with a few based on overseas thin-film technologies.  Conventional solutions suffer from several limitations: (1) semi-submersible platforms are large and heavy, with complex construction organization, low efficiency, high costs, strong dependence on nearshore fabrication sites and marine engineering production capacity; (2) transport efficiency is low, with only hundreds of kilowatts per shipment (compared to megawatts per shipment for offshore wind); and (3) thin-film solutions rely on non-standard, customized PV modules. To address these challenges, a rapidly deployable and foldable offshore floating photovoltaic system TK-FFPV has been developed, based on first-principles thinking and the KISS (Keep It Simple and Stupid) design philosophy. By leveraging prefabrication, modularization, and foldable structures, TK-FFPV transforms the high-risk, costly, and complex outdoor construction paradigm of large marine engineering equipment into a safe, economical, and efficient indoor intelligent manufacturing model for small electromechanical equipment. The approach is more conducive to exploiting industrial supply chain advantages, enabling large-scale deployment and export, reducing costs, improving efficiency, and accelerating the development of offshore PV. This paper presents the real-sea field tests conducted for the wave performance of TK-FFPV system.

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Diterbitkan

2026-06-30

Cara Mengutip

Tingting Zhu, Xu Zhao, Yanan Xu, & Hanbao Chen. (2026). Wave Performance Study of a Rapidly Deployable and Foldable Offshore Floating Photovoltaic System. Jurnal Teknik | Majalah Ilmiah Fakultas Teknik UNPAK, 27(1), 1–7. https://doi.org/10.33751/teknik.v27i1.47