Pengembangan Inovatif Panel Surya Apung Pada Skala Kecil dengan Floating Berbasis Bambu Olahan di Embung Gununganyar, Kabupaten Tuban, Jawa Timur

Authors

  • Rasjida Amalia Bakti Lestari Institut Teknologi Sepuluh Nopember
  • Frido Ilham Prianggoro Institut Teknologi Sepuluh Nopember
  • Maya Felicia Kusnadi Institut Teknologi Sepuluh Nopember
  • Siti Kamilia Aziz Institut Teknologi Sepuluh Nopember

DOI:

https://doi.org/10.61132/globe.v4i1.1311

Keywords:

Local Wisdom, Net Zero, Processed Bamboo, Renewable Energy, Solar Panels

Abstract

Gununganyar Reservoir in Tuban Regency is one of the reservoirs used as a source of livelihood for the local community. However, further development and utilization of Gununganyar Reservoir have yet to be undertaken. The development of a small-scale floating Photovoltaic Solar Power Plant (floating solar panels) at Gununganyar Reservoir, aimed at providing an alternative and renewable energy source for operating raw water pumps and for supporting the Gununganyar Nature Tourism (WAG) initiative, constitutes an innovative and strategic effort to enhance energy efficiency and environmental sustainability in rural areas. This study focuses on the design and performance assessment of a floating solar panel system constructed with processed bamboo as an alternative floating material replacing HDPE, while integrating local wisdom and environmental conservation principles to minimize the reservoir’s carbon footprint. The methodology employs a simple quantitative approach combined with a literature review of relevant studies. Based on the analysis, the design of this small-scale floating solar panel system utilizes a 170 Wp off-grid solar module mounted at a tilt angle of approximately 7,1°, capable of generating a peak power output exceeding 2,962 kWp and supported by a battery capacity of  328,33 Ah. The implementation of these floating solar panels is expected to serve as a model for reservoir development by promoting energy self-sufficiency, stimulating local economic growth, and contributing to the achievement of net zero emissions by 2060.

References

Badan Standardisasi Nasional. (2011). SNI 0225:2011 Persyaratan umum instalasi listrik 2011. BSN

Bloktuban.com. (2018, February 28). WAG terus dikembangkan. Blok Tuban. https://bloktuban.com/2018/02/28/wag-terus-dikembangkan-13765.html

Cinantya, P., Widiastuti, H., & Lumombo, L. (2024). Studi kelayakan pembangunan pembangkit listrik tenaga surya terapung pada waduk sumber air minum di Batam. Jurnal Profesi Insinyur Indonesia (JPII), 65–70. https://doi.org/10.14710/jpii.2024.21723

Hexana Semesta. (2022). Apa itu iradiasi, bagaimana mengukurnya dan untuk apa? PT Hexana Semesta. https://www.hexana.co.id/post/apa-itu-iradiasi-bagaimana-mengukurnya-dan-untuk-apa

Jordan, D. C., & Kurtz, S. R. (2013). Photovoltaic degradation rates—An analytical review. Progress in Photovoltaics: Research and Applications, 21(1), 12–29.

K, A. B., Nadhiroh, N., S, G. S., S, R. H., & D, M. C. (2024). Analisis daya luaran prototipe pembangkit listrik tenaga surya terapung. Dalam Prosiding Seminar Nasional Teknik Elektro (Vol. 10, pp. 215–221).

Kharisma, A., Pinandita, S., & Jayanti, A. E. (2024). Literature review: Kajian potensi energi surya alternatif. JEBT: Jurnal Energi Baru & Terbarukan, 5(2), 146–154. https://doi.org/10.14710/jebt.2024.23956

Marupa, I., Moe, I. R., Mardjono, A., & Malindo, D. (2022). PLTS terapung: Review pembangunan dan simulasi numerik untuk rekomendasi penempatan panel surya di Waduk Cirata. Jurnal Teknik Pengairan: Journal of Water Resources Engineering, 13(1), 48–62. https://doi.org/10.21776/ub.pengairan.2022.013.01.05

Rosa-Clot, M., & Tina, G. M. (2018). Submerged and floating photovoltaic systems: Modelling, design and case studies. Academic Press.

Sahu, A., Yadav, N., & Sudhakar, K. (2016). Floating photovoltaic power plant: A review. Renewable and Sustainable Energy Reviews, 66, 815–824.

Sakti, B. A., Rahman, H., & Santoso, B. (2024). Analisa komponen dan kelistrikan sistem PLTS off-grid untuk operasi pertanian rumah kaca lobadaun. Dalam Prosiding Seminar Nasional Teknik Mesin (pp. 1717–1725).

Simamora, P. K., & Krisnaldi. (2021). Perancangan awal sistem mooring untuk PLTS terapung berkapasitas 1 MWp di Waduk Jatigede, Jawa Barat. Teknik Lepas Pantai, 1–18.

Skoplaki, E., & Palyvos, J. A. (2009). On the temperature dependence of photovoltaic module electrical performance: A review of efficiency/power correlations. Solar Energy, 83(5), 614–624.

Trapani, K., & Millar, D. L. (2013). The potential of floating photovoltaic systems. Energy Procedia, 46, 239–248.

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Published

2026-02-14

How to Cite

Rasjida Amalia Bakti Lestari, Frido Ilham Prianggoro, Maya Felicia Kusnadi, & Siti Kamilia Aziz. (2026). Pengembangan Inovatif Panel Surya Apung Pada Skala Kecil dengan Floating Berbasis Bambu Olahan di Embung Gununganyar, Kabupaten Tuban, Jawa Timur . Globe: Publikasi Ilmu Teknik, Teknologi Kebumian, Ilmu Perkapalan, 4(1), 47–59. https://doi.org/10.61132/globe.v4i1.1311

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