Research on Switched-mode Power Supplies Influence on a Data Rate Over Home Electrical Wiring Networks

Authors

DOI:

https://doi.org/10.31861/sisiot2025.2.02013

Keywords:

power line communication, broadband access, switched-mode power supply, data rate

Abstract

The rapid development of the Internet of Things, one of the most dynamically expanding technological domains worldwide, is the reason for ongoing search for solutions that combine high bandwidth, flexibility, scalability, and cost efficiency for the implementation of such concepts as Smart Grid, Smart Home, and Smart City. Despite the significant progress of wireless technologies and their widespread deployment in the Internet of Things sector, their application cannot always address all challenges, particularly with regard to ensuring a stable signal level in shadow coverage zones. In such cases, the application of Power Line Communication technology is considered appropriate, as it enables broadband access through home electrical wiring network. Data transmission via high-frequency signals is not considered during the design of home electrical wiring network. Therefore, it is an urgent issue to investigate both the propagation characteristics of the electrical wiring medium and the effects of various loads connected to branches on home electrical wiring network parameters. This article is devoted to researching the influence of switch-mode power supplies of different power rates on the data rate of data transmitting systems Broadband over Power Line Communication operating over home electrical wiring network. Calculations of the maximum achievable data rate for a fragment of home electrical wiring network consisting of a single branch formed by segments of ShVVP, a common domestic wire in Ukraine, with copper conductors of 1.5 mm² cross-sectional area were performed. The influence of the input filter parameters and the noise induced by the alternating magnetic field of the SMPS transformer on the maximum achievable data transmission rate in home electrical wiring network was analyzed. The research was performed within a frequency range of 0 to 30 MHz, which corresponds to the 25 MHz–PB band in accordance with ITU-T Recommendation G.9964.

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Author Biographies

  • Oleksandr Yanevych, State university of intelligent technologies and telecommunications

    Candidate of Engineering Sciences, Senior Lecturer at the Department of Radioelectronic Systems and Technologies, State university of intelligent technologies and telecommunications. His research interests include orthogonal harmonic signals, power line communications, sensor networks, IoT, Smart Home, short range devices.

  • Kseniia Tryfonova, State university of intelligent technologies and telecommunications

    Received a master's degree in computer-integrated technological processes and production from Odesa National O.S. Popov Academy of Telecommunications. Lecturer at the Department of Information and computer systems, State university of intelligent technologies and telecommunications. Her research interests include computer and information networks, information network service platforms, power line communications, IoT, Smart Home.

References

X. Zhu, K. Zhu, and M. Heggo, Hybrid Wireless-Power Line Communication for Indoor IoT Networks. Norwood: Artech House, 2020.

L. N. Sastry Varanasi, A. R. Jonnalagadda, and S. P. K. Karri, “Smart Edge Device Utilizing Power Line Communication for Energy Management and Control of Electrical Appliances,” IEEE Access, vol. 12, pp. 37207–37218, 2024. https://doi.org/10.1109/ACCESS.2024.3373009.

“State of IoT 2024: Number of connected IoT devices growing 13% to 18.8 billion globally,” [Online]. Available: https://iot-analytics.com/number-connected-iot-devices/ [Accessed: May 27, 2025].

“Cellular IoT connections expected to surpass 7 billion by the end of 2030,” [Online]. Available: https://www.ericsson.com/en/reports-and-papers/mobility-report/dataforecasts/iot-connections-outlook [Accessed: May 27, 2025].

S. U. Ercan, “Power line Communication: Revolutionizing data transfer over electrical distribution networks,” Engineering Science and Technology, an International Journal, vol. 52, pp. 1–11, Apr. 2024. https://doi.org/10.1016/j.jestch.2024.101680.

C. Vlachou and S. Henri, A Practical Guide to Power Line Communications. Cambridge: Cambridge Univ. Press, 2022.

M. V. Ribeiro, M. de L. Filomeno, A. Camponogara, T. R. Oliveira, T. F. Moreira, and S. Galli, “Seamless Connectivity: The Power of Integrating Power Line and Wireless Communications,” IEEE Communications Surveys & Tutorials, vol. 26, no. 1, pp. 1–40, First quarter 2024. https://doi.org/10.1109/COMST.2023.3327321.

P. A. Janse van Rensburg, S. Alahakoon, J. Aghaei, B. P. Watkins, M. P. Sibanda, L. A. Bui, K. Emami, N. Das, and S. de Silva, “A Tutorial on Modem Coupling Circuits for Low-Voltage Power-Line Communications: Operating Principles, Trade-Offs, Design, and Safety,” IEEE Access, vol. 12, pp. 159176–159201, 2024. https://doi.org/10.1109/ACCESS.2024.3479148.

S. A. Zablotskyi, Modeli i kharakterystyky system peredachi shyrokosmuhovoho dostupu po merezhakh elektroprovodky: candidate of technical sciences dissertation. 05.12.02. Odesa: Odesa National O.S. Popov Academy of Telecommunications, 2014. (In Ukrainian).

O. K. Yanevych, Modeli ta metody rozrakhunku kharakterystyk system peredachi merezhamy elektroprovodky: candidate of technical sciences dissertation. 05.12.02. Odesa: Odesa National O.S. Popov Academy of Telecommunications, 2019. (In Ukrainian).

A. G. Lashko, L. M. Liakhovetskyi, and O. K. Yanevych, “Doslidzhennia vplyvu oporu navantazhennia vidhaluzhennia na shvydkist peredavannia danykh merezhamy budynkovoi elektroprovodky,” Proceedings of the O.S. Popov ОNAT, no. 1, pp. 53–60, 2018. (In Ukrainian). https://doi.org/10.33243/2518-7139-2018-1-1-53-60.

“WX-DC2416 PSU,” [Online]. Available: https://oshwlab.com/FrankCA/wx-dc2416-psu [Accessed: Jun 10, 2025].

O. Yanevych, K. Tryfonova, and O. Kovalov, “Doslidzhennia vplyvu impulsnykh blokiv zhyvlennia na parametry peredavannia merezhi budynkovoi elektroprovodky,” Herald of Khmelnytskyi national university, no. 4 (355), pp. 724–729, 2025. (In Ukrainian).

ITU-T Recommendation G.9964 (12/2023), “Unified high-speed wireline-based home networking transceivers – Power spectral density specification,” [Online]. Available: https://www.itu.int/rec/dologin_pub.asp?lang=e&id=T-REC-G.9964-202312-I!!PDF-E&type=items [Accessed: Jun 26, 2025].

A. V. Oppenheim, R. W. Schafer, and J. R. Buck, Discrete-Time Signal Processing. United States: Prentice-Hall, Inc., 1999.

L. M. Liakhovetskyi and V. I. Oreshkov, “Vyznachennia tochnoi formuly rozrakhunku shvydkosti peredavannia informatsii na nesuchykh system peredachi ortohonalnymy harmonichnymy syhnalamy,” Proceedings of the O.S. Popov ОNAT, no. 1, pp. 138–143, 2012. (In Ukrainian).

L. M. Liakhovetskyi, V. I. Oreshkov, and I. B. Barba, “Udoskonalennia metodu otsinky shvydkosti peredavannia system peredachi ortohonalnymy harmonichnymy syhnalamy,” Proceedings of the O.S. Popov ОNAT, no. 2, pp. 186–193, 2014. (In Ukrainian).

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Published

2025-12-30

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How to Cite

[1]
O. Yanevych and K. Tryfonova, “Research on Switched-mode Power Supplies Influence on a Data Rate Over Home Electrical Wiring Networks”, SISIOT, vol. 3, no. 2, p. 02013, Dec. 2025, doi: 10.31861/sisiot2025.2.02013.

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