Design and Development of a Solar-Powered IoT-Based Energy Consumption Monitoring System

Authors

Anuar Jaafar

Centre for Telecommunication Research and Innovation (CeTRI), Fakulti Teknologi dan Kejuruteraan Elektronik dan Komputer, Universiti Teknikal Malaysia Melaka (Malaysia)

Aiman Haqeem Ahmad Tarmizi

Centre for Telecommunication Research and Innovation (CeTRI), Fakulti Teknologi dan Kejuruteraan Elektronik dan Komputer, Universiti Teknikal Malaysia Melaka (Malaysia)

Haziezol Helmi Mohd Yusof

Centre for Telecommunication Research and Innovation (CeTRI), Fakulti Teknologi dan Kejuruteraan Elektronik dan Komputer, Universiti Teknikal Malaysia Melaka (Malaysia)

Kamaliah Hanim Samhudi Kamil

Jabatan Kejuruteraan Elektrik, Politeknik Port Dickson, KM 14, Jalan Pantai, 71050 Si Rusa, Negeri Sembilan, Malaysia. (Malaysia)

Siti Aisyah Anas

Centre for Telecommunication Research and Innovation (CeTRI), Fakulti Teknologi dan Kejuruteraan Elektronik dan Komputer, Universiti Teknikal Malaysia Melaka (Malaysia)

Noor Shahida Mohd Kasim

Centre for Telecommunication Research and Innovation (CeTRI), Fakulti Teknologi dan Kejuruteraan Elektronik dan Komputer, Universiti Teknikal Malaysia Melaka (Malaysia)

Abd Majid Darsono

Centre for Telecommunication Research and Innovation (CeTRI), Fakulti Teknologi dan Kejuruteraan Elektronik dan Komputer, Universiti Teknikal Malaysia Melaka (Malaysia)

Article Information

DOI: 10.47772/IJRISS.2026.100700366

Subject Category: Environment

Volume/Issue: 10/7 | Page No: 5420-5430

Publication Timeline

Submitted: 2026-07-20

Accepted: 2026-07-25

Published: 2026-08-01

Abstract

Residential energy conservation is frequently hindered by a lack of real-time visibility into usage, widening the "behavior-action gap" between daily electricity utilization and delayed monthly utility statements. This paper presents the development of a low-cost, open-source, residential solar-powered Internet of Things (IoT) monitoring system. The proposed architecture segments data collection tasks into a Direct Current (DC) renewable generation node and an Alternating Current (AC) appliance-level consumption interface using dual ESP32 microcontrollers. The system collects data from precision inline INA226 shunt sensors on the solar and battery storage paths, alongside a ZMPT101B transformer and an SCT-013 current transformer wrapped in a physical 5-turn wire loop to lift low-power current boundaries above standard resolution floors. Telemetry is streamed asynchronously via Message Queuing Telemetry Transport (MQTT) over a cloud HiveMQ broker. To optimize edge node efficiency, chronological timestamping is completely decoupled from the hardware layer and managed server-side upon database ingestion into InfluxDB. Real-time and historical analytics are visualised using a centralized Grafana web dashboard interface. Experimental results show that the hardware sensing layer maintained high measurement precision, yielding low absolute errors (Verror ≤ 0.38% and Ierror ≤ 32%) and successfully resolving low-power household standby states down to single-digit wattages (e.g., 9W). The event-driven alert system achieved zero-latency multi-tier warnings, verifying that the proposed framework delivers an accessible, high-fidelity sub-metering platform for urban electrification programs.

Keywords

Solar Energy, Internet of Things (IoT), Energy Consumption Monitoring.

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References

1. T. Khafiso, C. Aigbavboa, and S. A. Adekunle, "Barriers to the adoption of energy management systems in residential buildings," Facilities, vol. 42, no. 15/16, pp. 107-125, Dec. 2024, doi: 10.1108/F-12-2023-0113. [Google Scholar] [Crossref]

2. M. Poyyamozhi, B. Murugesan, N. Rajamanickam, M. Shorfuzzaman, and Y. Aboelmagd, "IoT-A promising solution to energy management in smart buildings: A systematic review, applications, barriers, and future scope," Buildings, vol. 14, no. 11, p. 3446, Oct. 2024, doi: 10.3390/buildings14113446. [Google Scholar] [Crossref]

3. S. Corgnati, E. Guercio, and S. D'Oca, "Energy@home: Energy monitoring in everyday life," in Universal Access in Human-Computer Interaction. Aging and Assistive Environments, vol. 8515, C. Stephanidis and M. Antona, eds., in Lecture Notes in Computer Science, vol. 8515, Cham: Springer International Publishing, 2014, pp. 483-492, doi: 10.1007/978-3-319-07446-7_47. [Google Scholar] [Crossref]

4. N. A. Baidoo et al., "Households' energy conservation and efficiency awareness practices in the Cape Coast Metropolis of Ghana," Discov. Sustain., vol. 5, no. 1, p. 2, Jan. 2024, doi: 10.1007/s43621-023-00154-6. [Google Scholar] [Crossref]

5. J. Zywiolek, J. Rosak-Szyrocka, and M. Mrowiec, "Knowledge management in households about energy saving as part of the awareness of sustainable development," Energies, vol. 14, no. 24, p. 8207, Dec. 2021, doi: 10.3390/en14248207. [Google Scholar] [Crossref]

6. B. Vaidya, K. R. Panthee, and J. Amgain, "Awareness of household energy consumption and its impact on the environment: A case of Kathmandu Valley, Nepal," J. Econ. Concerns, vol. 13, no. 1, pp. 24-36, Dec. 2022, doi: 10.3126/tjec.v13i1.57059. [Google Scholar] [Crossref]

7. M. Dell'Isola, G. Ficco, L. Canale, B. Palella, and G. Puglisi, "An IoT integrated tool to enhance user awareness on energy consumption in residential buildings," Atmosphere, vol. 10, no. 12, p. 743, Nov. 2019, doi: 10.3390/atmos10120743. [Google Scholar] [Crossref]

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