Accuracy Testing of Three-Phase kWh Meters in Direct and Indirect Measurement APP Wiring

Authors

  • Yani Kamisa Putri Politeknik Negeri Padang, Indonesia
  • Akbar Abadi Politeknik Negeri Padang, Indonesia
  • Muhardika Politeknik Negeri Padang, Indonesia
  • Roy Bayu Negara Politeknik Negeri Padang, Indonesia
  • Ahmad Ilyas Putra Riancefi Politeknik Negeri Padang, Indonesia

DOI:

https://doi.org/10.56127/jukim.v5i01.2551

Keywords:

kWh meter, energy metering accuracy, three-phase APP, direct metering, indirect metering

Abstract

The reliability of electric power systems depends significantly on the accuracy of electrical energy metering instruments, as measurement errors directly influence consumption records and the fairness of transactions between utilities and customers. This study assesses the accuracy of kilowatt-hour (kWh) meters installed in three-phase Measuring and Limiting Devices (APP), considering both direct measurement configurations at low voltage (LV) and indirect measurement configurations at medium voltage (MV). The methodology includes field measurements of current, voltage, and power, followed by the calculation of kWh meter errors and Current Transformer (CT) errors using the collected data. The findings show that the kWh meter error is 0.27% for direct measurements and −1.78% for indirect measurements, with an average CT error of 1.97%. All measured error values are within the applicable standard tolerance limits; thus, the kWh meters are considered accurate, reliable, and suitable for operational use.

References

[1] S. A. Solarin, “Convergence dynamics of urban and rural electricity access rates across African countries,” Util. Policy, vol. 96, p. 102012, 2025, doi: https://doi.org/10.1016/j.jup.2025.102012.

[2] F. Funan and W. Sutama, “Evaluasi Keandalan Sistem Distribusi Tenaga Listrik Berdasarkan Indeks Keandalan SAIDI dan SAIFI pada PT PLN ( PERSERO ) Rayon,” vol. 3, no. 1, pp. 32–36, 2020.

[3] PT.PLN, “SPLN d3.006-2 (Persyaratan Khusus Meter Statik Energi Aktif Fase Tigas Kelas 0.2s Dan O.5s),” 2009.

[4] K. P. Widiatmika, “Pengukuran Konsumsi Energi Listrik pada Sistem KWH-Meter Digital Satu Phasa dengan Metode Pengukuran Arus,” Etika Jurnalisme Pada Koran Kuning Sebuah Stud. Mengenai Koran Lampu Hijau, vol. 16, no. 2, pp. 39–55, 2015.

[5] F. Syahbakti Lukman, H. Mubarak, and Cholish, “Analisis Error Kwh Meter Tiga Fase Terhadap Kesalahan Pengawatan Pada Pengukuran Tidak Langsung,” Konf. Nas. Sos. dan Eng., vol. 3, no. 1, pp. 839–848, 2022, [Online]. Available: https://ojs.polmed.ac.id/index.php/KONSEP2021/article/view/830

[6] D. Asmono, S. Pengajar, J. Teknik, E. Politeknik, and N. Bandung, “Pengukuran energi listrik tidak langsung menggunakan kwh meter dan kvarh meter,” vol. 8, no. 3, pp. 198–204, 2014.

[7] R. D. Saputra et al., “PENINGKATAN AKURASI PENGGUNAAN DAYA AKTIF KEPADA PELANGGAN POTENSIAL PLN ULP BATU MELALUI PENGUKURAN TIDAK LANGSUNG,” vol. 12, no. 1, 2024.

[8] F. Kurniadi, B. Fery Setiawan, M. Facta, P. UPDL Pandaan, J. Timur, and S. Selatan, “Analisis Akurasi kWh Meter 3 Kawat Dan Empat Kawat Untuk Beban Linier Dan Non Linier,” J. Transistor Elektro dan Inform. (TRANSISTOR EI), vol. 5, no. 1, pp. 21–27, 2023.

[9] C. Irawan, Y. P. Hikmat, and H. Purnama, “Rancang Bangun Modul Pengukuran Energi Listrik Tidak Langsung Menggunakan Kwh Dan Kvarh Meter,” Pros. Ind. Res. Work. Natl. Semin., vol. 14, no. 1, pp. 116–122, 2023, doi: 10.35313/irwns.v14i1.5371.

[10] Y. Hong, “Measurement analysis of three phase intelligent electricity meter based on nonlinear load,” Meas. Sensors, vol. 33, p. 101215, 2024, doi: https://doi.org/10.1016/j.measen.2024.101215.

[11] M. Artiyasa, S. N. Hanifah, and A. Felani, “Analysis deviation of direct measurement KWh meter in PLN P2TL Rayon Sukaraja Kab. Sukabumi,” in 2017 International Conference on Computing, Engineering, and Design (ICCED), 2017, pp. 1–6. doi: 10.1109/CED.2017.8308107.

[12] L. H. Rahman and Y. P. Hikmat, “Rancang Bangun Modul Pengukuran Tidak Langsung Pada KWh Meter Analog Dan Digital Terhadap Kesalahan Pengawatan,” pp. 24–25, 2024.

[13] S. Soewono and N. Hadi, “Accuracy Optimization of Kwh High Voltage Consumer Transactions With Selection of Current Transformer (Ct) Ratio in Accordance With Contracted Power,” IJISCS (International J. Inf. Syst. Comput. Sci., vol. 4, no. 3, p. 114, 2020, doi: 10.56327/ijiscs.v4i3.930.

[14] H. Saadat, Power System Analysis.pdf. New York: McGraw-Hill, 1999.

[15] SPLN D3.006, “Meter Statik Pascabayar Fase Tiga,” no. 0078, 2021.

[16] V. C. Thania, S. S, T. Multazam, H. M. Yusdartono, and D. Fariadi, “Error comparison between postpaid and prepaid kWh meter readings under load variations,” J. Geuthee Eng. Energy, vol. 3, no. 2, pp. 96–109, 2024, doi: 10.52626/joge.v3i2.47.

[17] PT PLN (Persero) PUSAT PENDIDIKAN DAN PELATIHAN, Diagram Pengawatan. 2009.

Downloads

Published

2026-01-31

How to Cite

Putri, Y. K., Abadi, A., Muhardika, Negara, R. B., & Riancefi, A. I. P. (2026). Accuracy Testing of Three-Phase kWh Meters in Direct and Indirect Measurement APP Wiring. Jurnal Ilmiah Multidisiplin, 5(01), 106–113. https://doi.org/10.56127/jukim.v5i01.2551

Citation Check

Similar Articles

<< < 1 2 

You may also start an advanced similarity search for this article.