Analisis Ketepatan Pengukur Daya dan Faktor Daya Listrik Berbasis Arduino Uno R3 328P

Wilda Noer Agustianingsih, Freddy Kurniawan, Paulus Setiawan

Submitted : 2020-10-15, Published : 2020-11-17.

Abstract

Electric power and power factor are two parameters that must be considered because they involve the quality of the energy consumed. In order to be able to analyze these, a microcontroller-based power and power factor meter are needed which can be further developed. In this research, a power and power factor meter based on the ATmega328P microcontroller was developed on the Arduino board. Several algorithms are used to calculate the frequency of the grids, as well as the true-RMS of voltage and current. The simulation results show that this system can measure the power and power factor for input voltages of 100 to 300 volts with a frequency of 45 to 156 Hz for loads up to 5 amperes. The mean calculation average error for linear load is 0.28% for active power and -0.33% for apparent power. Meanwhile, for nonlinear loads, the calculation average error for active power is 1.86% and apparent power is 0.47%.

Keywords

power meter, power factor meter, microcontroller ATmega 328P, arduino

Full Text:

PDF

References

Kurniawan, F. (2012). Wattmeter Digital Berbasis Mikrokontroler. Teknoin, 18(1), 13-25.

Nanda, F. W., dkk. (2020), Analisis Ketepatan Pengukur Tegangan True RMS Jala-Jala Listrik Berbasis Mikrokontroler ATmega 328P, AVITEC, 2(2), 111-128.

Rustianik, Y., (2020). Analisis Ketepatan Pengukur Arus RMS Beban Listrik Berbasis Mikrokontroler ATmega 328P. Skripsi. Program Studi Teknik Elektro. Sekolah Tinggi Teknologi Adisutjipto: Yogyakarta.

Fauziah, N., (2020). Analisis Ketepatan Pengukur Frekuensi Listrik Berbasis Mikrokontroler ATmega 328P. Skripsi. Program Studi Teknik Elektro. Sekolah Tinggi Teknologi Adisutjipto.

J Prasetyo, S Sunardi. (2019). Kincir Bertingkat pada Pembangkit Listrik Mikrohidro. AVITEC, 1(1), 71-76.

P Ristianto, S Sunardi. (2019). Generator Ganda pada Pembangkit Listrik Mikrohidro dengan Turbin Tunggal. AVITEC, 1(1), 65-70

Setiawan, P., (2019), Analisis Pengaruh Tegangan Tidak Seimbang Pada Kinerja Motor Induksi Menggunakan Metode Transformasi Direct Quadrature, AVITEC, 1(1), 15-28

Belly,Alto, dkk. (2010). Daya Aktif, Reaktif, & Nyata. Makalah. Jurusan Teknik Elektro. Universitas Indonesia: Jakarta.

Suprianto. (2015). Pengertian Daya Semu, Daya Nyata dan Daya Reaktif. blog.unnes.ac.id/antosupri/pengertian-daya-semu-daya-nyata-dan-daya-reaktif (diakses 3 Oktober 2020)

Atmel. (2014). ATmega 640/V-1280/V-1281/V-2560/V-2561/V 8-bit Microcontroller with 16/32/64KB In-System Programmable Flash, Atmel Corporation, California, U.S.A.

Kurniawan,F. (2009). Implementasi Mikrokontroler Sebagai Pencacah Frekuensi Berbasis Pengukuran Periode Isyarat Masukan. Telkomnika, 7(1), 63.

Kurniawan, F. (2017). Implementasi Pengukur Nilai Tegangan RMS Jala-Jala Listrik Mikrokontroler. Angkasa, 3(1), 189.

Pelgrom, Marcel J.M. (2013). Analogue To Digital Converter. Springer Science & Business Media: Netherlands.

Article Metrics

Abstract view: 743 times
Download     : 399   times

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

Refbacks

  • There are currently no refbacks.