Analysis of the Effect of Winding Wire Cross-sectional Area and Rotating Speed on the Efficiency of 18 Slot 16 Pole Permanent Magnet Synchronous Generator

Irfan Delafena, Liliana Liliana

Abstract


The potential of renewable energy in Indonesia is very large with a total of 3,643.0 GW. One of them is wind energy, the huge potential of wind energy which is 154.9 GW is very wasted if it is not optimized as well as possible. The biggest obstacle to utilizing wind potential is low wind speed in some areas in Indonesia. So an effective generation system is needed to produce efficient output. A permanent Magnet Synchronous Generator (PMSG) is very suitable for use in areas of potential low-speed winds because low rotation can produce good efficiency. The output value of the Permanent Magnet Synchronous Generator (PMSG) is currently still low and can still be improved, for this research will analyze the broad influence of the cross-section of the winding wire on the stator on the efficiency of the 18 slots 16 poles Permanent Magnet Generator with rotational speed based on wind speed in Indonesia. Variations were carried out on a cross-sectional area of 0.6 mm2-3.6 mm2 winding wire and rotating speeds of 500 rpm, 750 rpm, and 1000 rpm. By using MagNet Infolytica 7.5 software based on Finite Element Method (FEM) to obtain output values in the form of voltage, current, and torque.  For efficiency values, data is reprocessed using Microsoft Excel. The results of this study show that the value of efficiency increases. The best efficiency produced when the rotating speed is 500 rpm is 97.04% at a cross-sectional area of 2.6 mm2 winding wire, for a rotating speed of 750 rpm the efficiency reaches 97.24% at a cross-sectional area of 2.4 mm2 winding wire and at a rotating speed of 1000 rpm the resulting efficiency is 97.16% at a cross-sectional area of 2.4 mm2 winding wire.

Keywords


Wind; Cross-sectional area; rotating speed; PMSG

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References


PLN(Persero), “Statistik PLN 2021,†Vol. 21, No. 1, Pp. 1–9, 2020, [Online]. Available: Http://Journal.Um-Surabaya.Ac.Id/Index.Php/Jkm/Article/View/2203.

Suharyati Et Al., “Energi Outlook Indonesia 2022,†Vol. 23, No. January, P. 2022, 2021.

R. Saputra And Z. Aini, “Analisis Pengaruh Ketebalan Dan Jenis Inti Besi Rotor Stator Terhadap Karakteristik Generator Sinkron Magnet Permanen 18s16p Fluks Radial,†J. Sains, Teknol. Dan Ind., Vol. 18, No. 2, Pp. 220–227, 2021.

“Potensi Energi Angin Indonesia 2020,†P3tkebt.Esdm.Go.Id, 2021. Https://P3tkebt. Esdm .Go.Id/Pilot-Plan-Project/Energi_Angin/Potensi-Energi-Angin-Indonesia-2020 (Accessed Mar. 20, 2023).

B. P. Statistik, “Kecepatan Angin Dan Kelembaban Di Stasiun Pengamatan Bmkg, 2011-2015,†Www.Bps.Go.Id, 2017. Https://Www.Bps.Go.Id/Statictable/2017/02/08/1960/Kecepatan-Angin-Dan-Kelembaban-Di-Stasiun-Pengamatan-Bmkg-2011-2015.Html (Accessed Apr. 03, 2023).

I. M. Adi Sayoga, I. K. Wiratama, M. Mara, And A. D. Catur, “Pengaruh Variasi Jumlah Blade Terhadap Aerodinamik Performan Pada Rancangan Kincir Angin 300 Watt,†Din. Tek. Mesin, Vol. 4, No. 2, Pp. 103–109, 2014, Doi: 10.29303/D.V4i2.59.

Sulaiman And A. Gunawan, “Pengujian Turbin Angin Dengan Variasi Kecepatan Angin , Putaran Motor Dan Putaran Generator Dengan Menggunakan Terowongan Angin Jenis Horizontal 3 Blade,†Vol. 1, No. 1, Pp. 38–44, 2023.

D. A. Fauzi, “Analisa Efisiensi Generator Pltu Pulang Pisau Pada Saat Pembebanan Deny,†2019.

M. A. Irawan, “Perancangan Generator Dengan Variasi Slot , Pole , Dan Lilitan Menggunakan Software Magnet,†Pp. 0–8, 2019.

Me. O. Suhada And I. Yasri, “Aspek Rancangan Generator Magnet Permanen Fluks Radial Kecepatan Rendah Meggi Octa Suhada1 ), Indra Yasri2 ) Mahasiswa Program Studi Teknik Elektro S1 , 2 ) Dosen Teknik Elektro Program Studi Teknik Elektro S1 , Fakultas Teknik Universitas Riau Kampus Bin,†Jom Fteknik, Vol. 5, Pp. 1–7, 2018.

B. Galang Satya, “Desain Mini Generator Magnet Permanen,†P. 23, 2018, [Online]. Available: Http://Repository.Uin-Suska.Ac.Id/15845/.

K. A And Supriyo, “Analisa Generator 3 Phasa Tipe Magnet Permanen Dengan Penggerak Mula Turbin Angin Propeller 3 Blade Untuk Pltb,†Eksergi J. Tek. Energi, Vol. 11, No. 1, Pp. 12–17, 2015.

I. Bagus, F. Citarsa, I. Ayu, And S. Adnyani, “Pengaruh Ketebalan Magnet Rotor Terhadap Back Emf Dan Efisiensi Permanent Magnet Synchronous Generator 12s8p,†Vol. 9, No. 1, Pp. 11–17, 2022, [Online]. Available: Https://Dielektrika.Unram.Ac.Id.

Agus Nur Hidayat, Suyitno, And Daryanto, “Pengaruh Jumlah Lilitan Kumparan Stator Terhadap Kinerja Generator Magnte Permanen Fluks Aksial Satu Fasa,†J. Electr. Vocat. Educ. Technol., Vol. 2, No. 2, Pp. 28–31, 2020, Doi: 10.21009/Jevet.0022.06.

F. Fikasari, “Analisis Pengaruh Perubahan Dimensi Magnet Pada Model Pmsg (Permanent Magnet Synchronous Generator) 12 Slot8 Pole,†Surakarta, 2021.

H. Prasetijo, Winasis, Priswanto, And D. Hermawan, “Design Of A Single-Phase Radial Flux Permanent Magnet Generator With Variation Of The Stator Diameter,†J. Teknol., Vol. 81, No. 4, Pp. 75–86, 2019, Doi: 10.11113/Jt.V81.12889.

T. D. Putri And L. Liliana, “Analisis Pengaruh Material Magnet Permanent Terhadap Karakteristik Generator Sinkron Radial 18 Slot 16 Pole,†Power Elektron. J. Orang Elektro, Vol. 11, No. 1, Pp. 45–50, 2022, [Online]. Available: Https://Ejournal.Poltektegal.Ac.Id/Index.Php/Powerelektro/Article/View/3279.

T. P. Zaputra And N. Gusnita, “Analisis Pengaruh Jumlah Lilitan Dan Kecepatan Putar Terhadap Efisiensi Pada Permanent Magnet Synchronus Generator 18 Slot 16 Pole,†Jtev (Jurnal Tek. Elektro Dan Vokasional), Vol. 8, No. 2, P. 411, 2022, Doi: 10.24036/Jtev.V8i2.117875.

C. H. Cangkara, “Pengaruh Variasi Diameter Kawat Kumparan Generator Linier Terhadap Performa Generator Linier Chalky Hianx Cangkara Aris Ansori Abstrak,†J. Tek. Mesin, Vol. 10, No. 1, 2022.

P. Lestantyo, “Pengaruh Diameter Kawat Dan Jumlah Lilitan Spull Alternator Terhadap Arus Dan Tegangan Yang Dihasilkan,†2017.

M. R. H. Indrawan Arifianto, “Analisa Efisiensi Dan Rancang Generator Permanent Magnet 12 Slot 8 Pole Menggunakan Software Magnet 7.5 Indrawan Arifianto,Muhamad Rangga Hs,†Semin. Nas. Microw., Pp. 43–48, 2018, [Online]. Available: Https://Repository.Unpak.Ac.Id/Tukangna/Repo/File/Files-20190204010207.Pdf.

I. Adiwiyata, “Analysis Finite Element Method ( Fem ) For Friction Stir Welding,†2017.




DOI: https://doi.org/10.33387/protk.v11i1.6209

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