Besarnya Gaya Gerak Listrik (GGL) Induksi Yang Dihasilkan Oleh Generator Sebagai Pembangkit Listrik Untuk Kebutuhan Pabrik Di PT. Z
Keywords:
Generator, Electricity, Electric Motion Force, Power Generation, Factors that affect ElectricityAbstract
A generator is a device capable of producing electric current. one type of generator is an alternating current generator. Alternating current generators function to convert mechanical power into alternating current electric power. This tool is often used in industry to drive several machines that use electric current as a driving source. The method used is the interview and observation method where questions and answers are asked directly with employees or field supervisors about the power generated by the generator used in the factory and direct observation in the field of the object to be studied. Because of the potential difference between points a and b so that electricity from a flows to b so that a physical phenomenon called electromotive force (GGL) induction occurs, where electromotive force is the force acting on electric charges moving in an electric field or magnetic field. This force refers to the force or impetus that affects the movement of electric charges in a particular medium. From the results of the calculation, the results of the induced electromotive force (GGL) generated by the generator are: E = 342,51 V. And for the results of the calculations obtained the results of the Emax electromotive force (GGL) induction generated by the generator, namely: E_max = 638,06 V. There are several factors that affect electromotive force including: The speed of change in the magnetic field, the number of turns, and the strength of the magnet.
References
[1] M. Martua, D. Setiawan, And H. Yuvendius, “Studi Karakteristik Luar Dan Efisiensi Generator Dc Penguat Terpisah Terhadap Perubahan Beban Dengan Menggunakan Metode Fuzzy Logic,” 2021.
[2] Y. Kurniawan And Z. Zulkifli, “Rancang Bangun Pembangkit Listrik Menggunakan Solenoida Dengan Pemanfaatan Fluks Magnet,” Rele (Rekayasa Elektrikal Dan Energi), Vol. 2, No. 1, Pp. 9–13, 2019.
[3] S. Agustina, A. Hamdadi, D. Yuniarti, D. Trivaldo Simatupang, And A. Dwi Fortuna Dan Herlina, “Jurnal Asiimetrik: Jurnal Ilmiah Rekayasa Dan Inovasi Perancangan Prototipe Pembangkit Listrik Tenaga Gelombang Sungai Menggunakan Gerak Translasi Magnet Permanen Design Of A River Wave Power Plant Prototype Using Permanent Magnet Translational Motion,” Vol. 4, Pp. 133–142, 2022.
[4] A. A. Wijaya, “Perancangan Generator Magnet Permanen Dengan Arah Fluks Aksial Untuk Aplikasi Pembangkit Listrik,” 2016.
[5] P. Priyadi, M. Muslikhudin, And D. Yulianto, “Pembuatan Prototype Generator Magnet Permanen Menggunakan Kumparan Stator Sebagai Alat Peraga Praktikum Fisika,” Integrated Lab Journal, Vol. 6, No. 1, Pp. 37–42, 2018, Doi: 10.5281/Zenodo.1994010.
[6] N. Najib Sanubari Matondang, “Analisis Sistem Pembebanan Pada Generator Di Pt. Pln (Persero) Pembangkit Listrik Tenaga Diesel Titi Kuning,” In Semnastek Uisu, 2020, Pp. 59–64.
[7] R. Yaksyah, D. Andika Pratama, And S. Muslimin, “Desain Generator Listrik Yang Terintegrasi Dengan Aplikasi Iot (Internet Of Things),” Teknika, Vol. 16, No. 1, Pp. 1–7, 2022.
[8] H. Darmadi, G. Gultom, D. Kurnia, And I. Syabil, “Pengaruh Gesekan Material Raw Mix Penyebab Keausan Terhadap Vertical Mill Pada Tyre Vertical Mill,” Jurnal Mekanova, Vol. 9, No. 1, 2023.
[9] M. Farhan, R. Hidayat, And Y. Saragih, “Pengaruh Pembebanan Terhadap Arus Eksitasi Generator Unit 2 Pltmh Curug,” Jurnal Simetrik, Vol. 11, No. 1, Pp. 398–403, 2021.
[10] A. Sakura, A. Supriyanto, And A. Surtono, “Rancang Bangun Generator Sebagai Sumber Energi Listrik Nanohidro,” 2017.
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