Designing a Real-Time DataLogger Using the Internet of Things for a Basic Imple Home Kwh Meter Capable of 1300 VA
DOI:
https://doi.org/10.59890/ijarss.v2i8.2210Keywords:
Internet Of Things, Monitoring, KWH, DataLoggerAbstract
Researchers want to make a kWh meter monitoring tool with estimated usage costs so that the tools made can help people to minimize costs in electricity usage. The purpose of this research is the creation of an IoT-based kWh meter monitoring tool that has the ability to read current, voltage, frequency, power factor and power usage that flows and shows the use of costs that have been used in real time with the display results on the LCD and also on the user's smartphone. In the reading results of usage costs (Rp) on the tool and PLN there is also a difference of Rp. 12,000, where the reading results on the tool are also lower than the results of the payment slip provided by PLN. The cost reading error rate on the tool is 4.4% with a reading accuracy rate of 95.6%.
References
Mustafa, Syahrul, and Umar Muhammad. 2020. “Rancang Bangun Sistem Monitoring Penggunaan Daya Listrik Berbasis Smartphone.” Jurnal Media Elektrik 17(3): 127.
Sirait, Fadli, and Billy Aji Wicaksono. 2017. “Jurnal Teknologi Elektro, Universitas Mercu Buana ISSN : 2086 ‐ 9479.” Jurnal Teknologi Elektro, UniversitasMercu Buana 8(2): 87–94. https://media.neliti.com/media/publications/141935-ID-perancangan-simulasi-sistem-pemantauan-p.pdf.
T. Nusa, S. R. U. A. Sompie, and E. M. Rumbayan, “Sistem Monitoring Konsumsi Energi Listrik Secara Real Time Berbasis Mikrokontroler,” E-Journal Tek. Elektro Dan Komput., vol. 4, no. 5, pp. 19–26, 2015.
Mustafa, Syahrul et al. 2020. “Rancang Bangun Sistem Monitoring Penggunaan Daya Listrik Design and Development of Electricity Use Monitoring System Based on Smartphone.” Jurnal MEDIA ELEKTRIK 17(3): 127–30.
P. E. Wicaksono, “Tarif Listrik Pelanggan 900 VA Golongan Mampu Kembali Naik di Mei,” Liputan6, 2017
A. Furqon, A. B. Prasetijo, and E. D. Widianto, “Rancang Bangun Sistem Monitoring dan Kendali Daya Listrik pada Rumah Kos Menggunakan NodeMCU dan Firebase Berbasis Android,” Ilm. Elektron., vol. 18, no. 2, pp. 93–104, 2019.
R. Sulistyowat and D. D. Febriantoro, “Perancangan Prototype Sistem Kontrol Dan Monitoring Pembatas Daya Listrik Berbasis Mikrokontroler,” J. IPTEK Vol 16 No.1 Mei 2012, vol. 16, no. 1, pp. 10–21, 2012.
S. Sultan, U. Rana, I. Ahmed, and S. Rabbani, “A New Technology of Online-Condition Monitoring of Energy Conservation Generation & Loads,” Smart Grid Renew. Energy, vol. 4, no. February, pp. 18–22, 2013.
Agustinus dkk. 2019. “IMPLEMENTASI PANEL SURYA YANG DITERAPKAN PADA DAERAH TERPENCIL DI RUMAH TINGGAL DI DESA SIBUNTUON, KECAMATAN HABINSARAN.” Renewable Energy I.
Rosman, Andi, Risdayana, Eva Yuliani, and Vovi. 2019. “Karakteristik Arus Dan Tegangan Pada Rangkaian Seri Dan Rangkaian Paralel Dengan Menggunakan Resistor.” Jurnal Ilmiah d’Computare 9(2): 40–43.
Belly, Alto, H Asep Dadan, Candra Agusman, and Budi Lukman. 2010. “Makalah Daya Aktif, Reaktif & Nyata.” Universitas Indonesia: 34.
Suseno, Aji, I Gusti Ira, and Muhammad Yudha. 2006. “Faktor Daya Listrik.” Erlangga: 5–21.
Destiarini, and Pius Widya Kumara. 2019. “Robot Line Follower Berbasis Mikrokontroller Arduino Uno Atmega328.” Jurnal Informanika 5(1): 18–25.
Ratnasari, Titi, and Adri Senen. 2017. “Perancangan Prototipe Alat Ukur Arus Listrik Ac Dan Dc Berbasis Mikrokontroler Arduino Dengan Sensor Arus Acs-712 30 Ampere.” Jurnal Sutet 7(2): 28–33.
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