Penggunaan Prototype DC Converter Untuk Peningkatan Kinerja Panel Surya 1000 Watt
DOI:
https://doi.org/10.55681/jige.v5i2.2635Keywords:
Price, Inverter, SavingsAbstract
Solar power plants (PLTS) are power plants that convert solar energy into environmentally friendly electrical energy. Reducing dependence on fossil fuel electricity and the increasingly expensive price of PLN electricity so that there is a need for alternative sources of renewable electricity, and the obstacle is the large investment in PLTS, including systems on-grid, off-grid, and hybrid. The use of sunlight in solar power plants is still limited to approximately 5 hours, the time range is from 10.00 to 14.30 WIB. To achieve the goal of extending the maximum period for collecting renewable energy, support can be provided by designing a prototype DC Converter, The design to be implemented uses the R&D research method. This research method is carried out to produce a product, test the effectiveness of the product, and perfect the product according to the criteria for creating a new product through different stages. The DC converter prototype functions as a replacement solar Charge Controller (SCC) is low cost and its performance produces electricity from 08:00 to 16:00 WIB. The Inverter is 12V 1000 watts and the output voltage of a 270Wp solar panel is around 33V DC, so the DC conversion function will reduce the output voltage of the solar panel to 12V DC and the load used by 30%. Installed load 240 watts or 0.24 kWh. can be fully lit for an average of 7 hours. By using a DC converter prototype, savings can be achieved assuming the selling price of PLN electricity is Rp. 1,444.70,-/kWH is Rp. 72,812.88/month
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Abit Duka, E. T., Setiawan, I. N., & Ibi Weking, A. (2018). Perencanaan Pembangkit Listrik Tenaga Surya Hybrid Pada Area Parkir Gedung Dinas Cipta Karya, Dinas Bina Marga Dan Pengairan Kabupaten Badung. Jurnal SPEKTRUM, 5(2), 67.
Alifyanti, D. F., Tambunan, J. M., Jurusan Teknik Elektro, S. Plnj., & Jurusan Teknik Elektro, STT PLNJakarta, J. co. (2018). Pengaturan tegangan Pembangkit Listrik Tenaga Surya(PLTS) 1000 watt. Jurnal Kajian Teknik Elektro, 1(1), 79–95.
Assyidiq, M. A., Winardi, B., & Andromeda, T. (2017). Perancangan Boost Converter Menggunakan Voltage Feedback Pada Panel Surya. Transient, 6(3), 404.
Boxwell, M. (2012). Solar electricity handbook. GreenstreamPublishing 12 Poplar Grove, Ryton on Dunsmore, Warwickshire, CV8 3Qe, United Kingdom.
Chamdareno, P. G., & Hilal, H. (2018). Analisa Pembangkit Listrik Tenaga Hybrid PLTD-PLTS di Pulau Tunda Serang Banten. RESISTOR (ElektRonika KEndali TelekomunikaSI Tenaga LiSTrik KOmputeR), 1(1), 35.
Fuaddin, D., & Daud, A. (2021). Rancangan sistem Pembangkit Listrik Tenaga Surya on-grid kapasitas 20 kWp untuk residensial. Jurnal Teknik Energi, 10(1), 53–57.
Halim, L., & Oetomo. (2020). Perancangan dan implementasi awal solar inverter untuk Pembangkit Listrik Tenaga Surya off grid. Jurnal Teknologi, 12(1), 31–38.
Hani, S., & Nugroho, I. A. (2021). Analisa Penggunaan Boost Converter Terhadap Daya Output Panel Surya Pada Warning Light. Jurnal Elektrikal, 8(2), 28–36.
Iman, M., & Pambayun, A. P. (2018). Penggunaan Pembangkit Listrik Tenaga Surya (PLTS) atap untuk keperluan pada rumah tinggal studi kasus: rumah tinggal di jalan swadaya, Depok. Trave.
Ismail, I., & Zakri, A. A. (2020). Perancangan boost konverter paada sistem microgrid bersumber solar sel. 7, 4–5.
Jabbar, A. H., & Syafitri, N. (2021). Perancangan Boost Converter untuk Menaikkan Tegangan Dari 12V ke 100-250V. 2022–2023.
Perdana, Y., Wardiah, I., Yohanes, E., Negeri Banjarmasin, P., Id, Y. P. A., & Id, I. A. (2018). Perencanaan Pembangkit Listrik Tenaga Surya ongrid 5500 watt di rumah kost akademi. Prosiding SNRT (Seminar Nasional Riset Terapan) Politeknik, 5662(November), 1–8.
Perdana, Y., Wardiah, I., & Yohanes, E. (2018). Perencanaan Pembangkit Listrik Tenaga Surya Ongrid 5500 Watt Di Rumah Kost Akademi. In Seminar Nasional Riset Terapan 3, A63-A70.
Pradiyo, J., Winardi, B., & Nugroh, A. (2015). Evaluasi dan optimasi sistem off grid Pembangkit Listrik Tenaga Hybrid (Plth) Bayu Baru, Bantul, D.I. Yogyakarta. Transient, TRANSIENT,(03), 557–564.
Putri, R., Meliala, S., & Zuraida, Z. (2020). Penerapan instalasi Panel Surya off grid menuju energi mandiri di yayasan pendidikan islam dayah miftahul janna. JET (Journal of Electrical …, 5(3), 117–120.
Ramadhan, A. I., Diniardi, E., & Mukti, S. H. (2016). Analisis desain sistem Pembangkit Listrik Tenaga Surya kapasitas 50 WP. Teknik, 37 (2), 2016, 59-63, 11(2), 61–78.
Rosalina, & Sinduningrum, E. (2019). Penerapan Pembangkit Listrik Tenaga Surya di lahan pertanian terpadu Ciseeng Parung-Bogor. Seminar Nasional Teknoka, 4(2502), 99–109.
Saefuddin, R. F., Winardi, B., & Sudjadi, S. (2021). Perancangan Plts Hybrid Dengan Bidirectional Dc-Dc Converter Di Gedung Ict Universitas Diponegoro Menggunakan Software Matlab Simulink. Transient: Jurnal Ilmiah Teknik Elektro, 10(2), 390–398.
Salman, R. (2013). Analisis perencanaan penggunaan sistem Pembangkit Listrik Tenaga Surya (Plts) untuk perumahan (Solar Home System). Majalah Ilmiah Bina Teknik, 1(1), 46–51.
Sugiyono, P. D. (2013). Metodo penelitian kuantitatif, kualitatif dan R&D (19th ed.). Alfabeta Bandung.
Sukmajati, S., & Hafidz, M. (2015). Perancangan dan analisis pembangkit listrik tenaga surya kapasitas 10 MW on grid di Yogyakarta. Energi & Kelistrikan, 7(1), 49-63.
Suprihartini, Y., Taryana, Andiyan, Cakranegara, P. A., & Dwiyandana, D. (2023). Utilization of Motion Sensors to Reduce Electricity Consumption in Buildings. Journal of Wireless Mobile Networks, Ubiquitous Computing, and Dependable Applications, 14(2), 94–108.
Wurfel, P., & Wurfel, U. (2016). Physics of solar cells (F. Formgeber & M. Mannheim (eds.); 3rd ed.). © 2016 Wiley-VCH Verlag GmbH & Co. KGaA, Boschstr. 12, 69469 Weinheim, Germany All.
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