Analisis Pengaruh Suhu Panel Surya Terhadap Output Panel Performance
DOI:
https://doi.org/10.47134/jme.v1i1.2189Keywords:
Temperature, Panels, Solar, RadiationAbstract
The main obstacle that greatly affects solar power output systems is the low conversion efficiency of solar panels, which is greatly influenced by their operating temperature. Failure to consider solar panel temperature increases the financial risks of installing the installation system. In this research, the output performance of solar panels was examined in outdoor conditions. All data was measured and recorded from 09.00 to 17.00, over 30 minute intervals. Panel temperature measurements were carried out using a Ditec C355 infrared thermometer. And then compared with using Pvsyst software. The output power of a solar panel is highly dependent on the solar radiation that falls on its surface. The amount of incoming sunlight is much higher during the hours from 11.00 to 13.00, which can be determined as the peak of the sun during the day. So it can be concluded that the ideal climate for setting up a large solar installation system is a cool and sunny climate.
References
Al Bahar, A. K., & Paiso, L. S. (2020). Analisa Perubahan Cuaca Terhadap Tegangan Input Panel Surya 100 WP. Sustainability (Switzerland), 14(2), 1–4.
Albahar, A. K. A., & Haqi, M. F. H. (2020). Pengaruh Sudut Kemiringan Panel Surya (Pv) Terhadap Keluaran Daya. Sustainability (Switzerland), 14(2), 1–4.
Amelia, A. R., Irwan, Y. M., Leow, W. Z., Irwanto, M., Safwati, I., & Zhafarina, M. (2016). Investigation of the effect temperature on photovoltaic (PV) panel output performance. Int. J. Adv. Sci. Eng. Inf. Technol, 6(5), 682-688. DOI: https://doi.org/10.18517/ijaseit.6.5.938
Asrori, A., & Yudiyanto, E. (2019). Kajian Karakteristik Temperatur Permukaan Panel terhadap Performansi Instalasi Panel Surya Tipe Mono dan Polikristal. FLYWHEEL : Jurnal Teknik Mesin Untirta, 1(1), 68. https://doi.org/10.36055/fwl.v1i1.7134 DOI: https://doi.org/10.36055/fwl.v1i1.7134
Chander, S., Purohit, A., Sharma, A., Nehra, S. P., & Dhaka, M. S. (2015). A study on photovoltaic parameters of mono-crystalline silicon solar cell with cell temperature. Energy Reports, 1, 104-109. DOI: https://doi.org/10.1016/j.egyr.2015.03.004
Dash, P. K., & Gupta, N. C. (2015). Effect of temperature on power output from different commercially available photovoltaic modules. International Journal of Engineering Research and Applications, 5(1), 148-151.
Fakhira, A. A., . S., & . Y. (2023). Analisis Pemanfaatan Panel Surya Tipe Polycrystalline 100 Wp Sebagai Sumber Energi Alternatif Untuk Meningkatkan Kesejahteraan Masyarakat Pedesaan Di Indonesia. Jurnal Pendidikan, Sains Dan Teknologi, 2(4), 982–985. https://doi.org/10.47233/jpst.v2i4.1318 DOI: https://doi.org/10.47233/jpst.v2i4.1318
Huda, A., & Siraju, W. (2021). Desain Simulasi Maksimum Power Point Tracking Metode P&O Pada Panel Surya Di Azzahra Hidroponik Juata Tarakan. Elektrika Borneo, 7(1), 5–10. https://doi.org/10.35334/jeb.v7i1.2107 DOI: https://doi.org/10.35334/jeb.v7i1.2107
Makkulau, A., Samsurizal, S., & Kevin, S. (2020). Karakteristik Temperatur Pada Permukaan Sel Surya Polycrystalline Terhadap Efektifitas Daya Keluaran Pembangkit Listrik Tenaga Surya. Sutet, 10(2), 69–78. https://doi.org/10.33322/sutet.v10i2.1291 DOI: https://doi.org/10.33322/sutet.v10i2.1291
Natarajan, S. K., Mallick, T. K., Katz, M., & Weingaertner, S. (2011). Numerical investigations of solar cell temperature for photovoltaic concentrator system with and without passive cooling arrangements. International journal of thermal sciences, 50(12), 2514-2521. DOI: https://doi.org/10.1016/j.ijthermalsci.2011.06.014
Nugraha, A. T., Ravi, A. M., & Tiwana, M. Z. A. (2021). Penggunaan Algoritma Interferensi dan Observasi Untuk Sistem Pelacak Titik Daya Maksimum Pada Sel Surya Menggunakan Konverter DC-DC Photovoltaics. Jurnal Janitra Informatika Dan Sistem Informasi, 1(1), 8–18. https://doi.org/10.25008/janitra.v1i1.107 DOI: https://doi.org/10.25008/janitra.v1i1.107
Patriany, A. K., Aksan, A., & Usman, U. (2023). Analisis Kinerja dan Ekonomi Sistem Pompa Air Tenaga Surya dan PLN. Seminar Nasional Teknik Elektro Dan Informatika (SNTEI), 8(1), 410–415. http://jurnal.poliupg.ac.id/index.php/sntei/article/view/3626
Ridwan, A., Medan, U. H., Hm, J., No, J., Yanie, A., Medan, U. H., Hm, J., No, J., Medan, U. H., Hm, J., & No, J. (2023). Perancangan Alat Penetas Telur Unggas Dengan Energi Terbarukan Menggunakan Panel Surya. RELE (Rekayasa Elektrikal Dan Energi) : Jurnal Teknik Elektro, 5(2), 41–46. https://doi.org/10.30596/rele.v5i2.13090 DOI: https://doi.org/10.30596/rele.v5i2.13090
Saputra, A. J., Erfianto, B., Saputra, M. A., Prabowo, S., & Swastika, N. A. (2019). Implementasi Fuzzy Logic Control Pada Tracking (Pelacakan) Solar Panel Menggunakan Arduino Atmega328. Jurnal Teknologi Bahan Dan Barang Teknik, 9(1), 25. https://doi.org/10.37209/jtbbt.v9i1.107 DOI: https://doi.org/10.37209/jtbbt.v9i1.107
Siagian, A. O., & Prasetyo, T. F. (2022). Keterkaitan Perbandingan Kinerja Panel Surya Dalam Situasi Lingkungan Tertentu Dengan Memanfaatkan Sirkuit Sensor. Jurnal AKRAB JUARA, 7(8.5.2017), 2003–2005. www.aging-us.com DOI: https://doi.org/10.58487/akrabjuara.v7i4.1937
Temaneh-Nyah, C., & Mukwekwe, L. (2015, February). An investigation on the effect of operating temperature on power output of the photovoltaic system at University of Namibia Faculty of Engineering and IT campus. In 2015 Third International Conference on Digital Information, Networking, and Wireless Communications (DINWC) (pp. 22-29). IEEE. DOI: https://doi.org/10.1109/DINWC.2015.7054211
Zhang, X., Shen, J., Xu, P., Zhao, X., & Xu, Y. (2014). Socio-economic performance of a novel solar photovoltaic/loop-heat-pipe heat pump water heating system in three different climatic regions. Applied energy, 135, 20-34. DOI: https://doi.org/10.1016/j.apenergy.2014.08.074
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2024 Journal of Mechanical Engineering

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