Design of 600 WP Solar Power Plant for Juice Vendors Through Off-Grid System
DOI:
https://doi.org/10.55927/fjsr.v3i8.10737Keywords:
Solar Panels, PLTS, Juice Vendors, Off-GridAbstract
Solar power plants (PLTS) generate electricity from the energy of solar photons. Solar cells, or solar cells made of crystalline silicon, are examples of solar panels that generate electricity through the photovoltaic effect. Thus, the construction of solar power plants (PLTS) is one of the right choices to save energy. The purpose of this study is to utilize the energy that is owned and to introduce it to the surrounding community. The community has widely used solar power generation (PLTS) technology, one of the main components of solar power plants is solar photovoltaic technology, which is used to operate juice blenders, cup sealers, and energy-efficient lighting. PLTS functions as an alternative energy source to help juice traders. Based on solar energy for this off-grid system, it has a power capacity of 3 x 200 WP. This monocrystalline solar panel also has a 300 Ah VRLA battery, a 2000 W inverter, and a 50 A solar charger controller (SCC). In addition, the PLTS off-grid system for juice traders has blender equipment, cup sealers, and lighting with an average power rating of 600 Watts. With an efficiency calculation of 80%, this system can be fully used to support business operations. This study is to develop and Design a 600-watt peak Solar Power Plant using an off-grid system for juice vendors that costs Rp. 22,000,000, including all essential components and services needed to ensure that the system can operate properly
Downloads
References
A., Mannan., Sheeraz, Kirmani., Iram, Akhtar. (2023). Design Methodology of Off-Grid PV System. 2570 doi: 10.1088/1742-6596/2570/1/012004
Bachtiar, I. K., & Syafik, M. (2016). Rancangan Implementasi Pembangkit Listrik Tenaga Surya (PLTS) Skala Rumah Tangga menggunakan Software HOMER: untuk Masyarakat Kelurahan Pulau Terong Kecamatan Belakang Padang Kota Batam. Jurnal Sustainable: Jurnal Hasil Penelitian Dan Industri Terapan, 5(2), 17-25
Bagaskoro, B., Windarta, J., & Denis, D. (2019). Perancangan Dan Analisis Ekonomi Teknik Pembangkit Listrik Tenaga Surya Sistem Offgrid Menggunakan Perangkat Lunak Homer Di Kawasan Wisata Pantai Pulau Cemara. Transient: Jurnal Ilmiah Teknik Elektro, 8(2), 152-157.
Harrouni, S. (2008). Fractal classification of typical meteorological days from global solar irradiance: application to five sites of different climates. In Modeling Solar Radiation at the Earth’s Surface: Recent Advances (pp. 29-54). Berlin, Heidelberg: Springer Berlin Heidelberg.
Hasan, H. (2012). perancangan pembangkit listrik tenaga surya di pulau Saugi. Jurnal riset dan teknologi kelautan, 10(2), 169-180.
Hasanah, A. W. (2021). Perancangan Sistem Pembangkit Listrik Tenaga Surya Off Grid 6, 4 Kwp Untuk 1 Unit Rumah Tinggal. Energi & Kelistrikan, 13(1), 20-25.
Jaka, Windarta., Susatyo, Handoko., Tejo, Sukmadi., K., Nafadinanto., S., Muqtasida., C., Halim. (2022). Design of a solar power plant system for micro, small, medium enterprise uses PVSyst 7.1 as a renewable energy alternative source in remote areas. IOP Conference Series: Earth and Environmental Science, 969(1):012029-012029. doi: 10.1088/1755-1315/969/1/012029
Julisman, A., Sara, I. D., & Siregar, R. H. (2017). Prototipe Pemanfaatan Panel Surya Sebagai Sumber Energi Pada Sistem Otomasi Stadion Bola. Jurnal Komputer, Informasi Teknologi, dan Elektro, 2(1).
Khamid, A., & Asy'ari, H. (2021). Desain Kompor Listrik Tenaga Surya Untuk Batik Tulis Yang Ramah Lingkungan. Jurnal Elektro Kontrol (ELKON), 1(1), 35-38.
King, D. L., Boyson, W. E., & Kratochvil, J. A. (2002, May). Analysis of factors influencing the annual energy production of photovoltaic systems. In Conference Record of the Twenty-Ninth IEEE Photovoltaic Specialists Conference, 2002. (pp. 1356-1361). IEEE.
Kumar, Y. P., & Bhimasingu, R. (2015). Renewable energy based microgrid system sizing and energy management for green buildings. Journal of Modern Power Systems and Clean Energy, 3(1), 1-13.
Ma, T., Yang, H., & Lu, L. (2017). Long term performance analysis of a standalone photovoltaic system under real conditions. Applied Energy, 201, 320-331.
Marion, B., Adelstein, J., Boyle, K. E., Hayden, H., Hammond, B., Fletcher, T., ... & Townsend, T. (2005, January). Performance parameters for grid-connected PV systems. In Conference Record of the Thirty-first IEEE Photovoltaic Specialists Conference, 2005. (pp. 1601-1606). IEEE.
Mukkun, Y. (2016). Pembuatan alat pengering ikan ramah lingkungan dengan menggunakan panel surya. Jurnal ilmiah FLASH, 2(2), 47-58.
Nasional, D. E. (2014). Outlook Energi Indonesia 2014. Kementerian Energi dan Sumber Daya Mineral. Jakarta.
Nasution, M. (2021). Karakteristik Baterai Sebagai Penyimpan Energi Listrik Secara Spesifik. JET (Journal of Electrical Technology), 6(1), 35-40.
Ooyama, Y., & Harima, Y. (2012). Photophysical and electrochemical properties, and molecular structures of organic dyes for dye‐sensitized solar cells. ChemPhysChem, 13(18), 4032-4080.
P. Wolf dan J. Včelák, “Simulation of a simple PV system for local energy usage considering the time resolution of input data,” J. Energy Storage, vol. 15, hal. 1–7, 2018, doi: 10.1016/j.est.2017.10.009.
Panggabean, S. Y. (2017). Rancang Bangun Inverter Satu Fasa Menggunakan Teknik High Voltage PWM (Pulse Width Modulation).
Purwoto, B. H., Jatmiko, J., Fadilah, M. A., & Huda, I. F. (2018). Efisiensi penggunaan panel surya sebagai sumber energi alternatif. Emitor: Jurnal Teknik Elektro, 18(1), 10-14.
Ramadhan, S. G., & Rangkuti, C. (2016, August). Perencanaan Pembangkit Listrik Tenaga Surya Di Atap Gedung Harry Hartanto Universitas Trisakti. In Prosiding Seminar Nasional Cendekiawan (pp. 22-1).
Ramadhani, B. (2018). Instalasi pembangkit listrik tenaga surya Dos & Don’ts. Jakarta: GIZ.
Ruslan, Oksenych., Oleksandr, Moroz., Mohamed, Qawaqzeh., Iryna, Trunova., Roman, Buinyi., Serhii, Dudnikov. (2023). Methodology for Designing the Capacity of Solar Power Plants for an Offline Home Network. doi: 10.1109/mees61502.2023.10402501
Sace, A. (2010). Technical application papers no. 10–photovoltaic plants. A Division of ABB SpALV Breakers, 14, 41-43.
Sarasa-Maestro, C. J., Dufo-López, R., & Bernal-Agustín, J. L. (2016). Analysis of photovoltaic self-consumption systems. Energies, 9(9), 681.
Sardi, J., Pulungan, A. B., Risfendra, R., & Habibullah, H. (2020). Teknologi panel surya sebagai pembangkit listrik untuk sistem penerangan pada kapal nelayan. Jurnal Penelitian Dan Pengabdian Kepada Masyarakat UNSIQ, 7(1), 21-26.
Sharma, R., & Goel, S. (2017). Performance analysis of a 11.2 kWp roof top grid-connected PV system in Eastern India. Energy Reports, 3, 76-84.
Usman, U., Muchtar, A., Muhammad, U., & Lestari, N. (2020). Purwarupa dan kinerja pengering gabah hybrid solar heating dan photovoltaic heater dengan sistem monitoring suhu. Jurnal Teknik Elektro, 12(1), 24-32.
Zhenzhen, Shi., Yun, Li., Yaolin, Lou., Ru, Yang., Xian, Feng, Yu., Yihang, Lu., Li, Yang., Shan, Guo., Biyi, Huang., Yunxia, Luo., Shubin, Yan. (2023). Design of a 600-kW distributed photovoltaic system. 12788:127880R-127880R. doi: 10.1117/12.3004688
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2024 Fitroh Anugrah Kusuma Yudha, Bambang Riyanta, Ikhsan Fakhri Fadullah, Aditya Kurniawan

This work is licensed under a Creative Commons Attribution 4.0 International License.



























