Valery Tikhvinskiy,
Institute of Radio and Information Systems (IRIS), Vienna, Austria;
International Information Technologies University (IITU), Almaty 050000, Kazakhstan
vtniir@mail.ru
DOI: 10.36724/2664-066X-2024-10-5-42-46
SYNCHROINFO JOURNAL. Volume 10, Number 5 (2024). P. 42-46.
Abstract
The article reviews the latest scientific achievements in the field of electromagnetic compatibility, presented at the international regional symposium on electromagnetic compatibility “EMC Europe 24” by the leading EMC research organizations, European, Asian, African and South American universities, as well as the largest companies, microelectronics manufacturers, automotive and aviation companies. The symposium “EMC Europe” is the leading international regional symposium on electromagnetic compatibility and continues a long tradition of regular international symposiums on EMC, organized in Europe. The symposium considered the following issues: EMC of 5G, 6G networks and the Internet of Things (IoT); standards and regulations, EMC management, EMC education; risk-based EMC, electromagnetic immunity; EMC in safety and security applications, in industrial environments and in military applications; Electromagnetic environment, lightning protection, intentional EMF and EMP, high-power electromagnetic interference, electrostatic discharges; wired and wireless communications, UWB, power line communications, spectrum management; automotive, rail, naval, aviation and space systems. The article presents the results of studies on the assessment of the EMC impact of Wi-Fi device transmitters (RLAN networks) on 5G radio receivers, the application of models developed for assessing the shielding properties of a wide range of products made of composite materials, the study of the characteristics and development of nonlinearity models of radio frequency amplifiers (RFAs) of the FR1 range of 5G networks for their subsequent application in solving EMC problems of radio equipment for mobile (cellular) communications in complex EMC created in the 4G/5G frequency bands, etc.
Keywords: electromagnetic compatibility, EMC Europe-24, frequency range, 5G networks
References
[1] A.P. Buslaev, D.A. Kuchelev, M.V. Yashina, “Dynamic systems and mathematical models of information traffic,” T-Comm. 2018. Vol. 12. No. 3. Pp. 22-38.
[2] S.V. Kozlov, A.N. Kubankov, “Process foundations of integration and comprehensive development of information, control, robotic, telecommunication systems,” High-Tech in Earth Space Research. 2020. Vol. 12. No. 1. Pp. 23-31.
[3] V.A. Dokuchaev, V.V. Maklachkova, V.Yu. Statev, “Classification of personal data security threats in information systems,” T-Comm. 2020. Vol. 14. No. 1. Pp. 56-60.
[4] A.N. Burenin, K.E. Legkov, “Security issues of infocommunication systems and special-purpose networks: main threats, methods and means of ensuring comprehensive network security,” High-Tech in Earth Space Research. 2015. Vol. 7. No. 3. Pp. 46-61.
[5] R.I. Zakharchenko, I.D. Korolev, “Methodology for assessing the sustainability of critical information infrastructure facilities operating in cyberspace,” High-Tech in Earth Space Research. 2018. Vol. 10. No. 2. Pp. 52-61.
[6] D.S. Chirov, E.M. Lobov, “Selection of a signal-code design for a command-telemetry radio communication line with medium- and long-range unmanned aerial vehicles,” T-Comm. 2017. Vol. 11. No. 10. Pp. 21-28.
[7] O.G. Chertova, D.S. Chirov, “Construction of a backbone communication network based on small-sized unmanned aerial vehicles in the absence of ground infrastructure,” High-Tech in Earth Space Research. 2019. Vol. 11. No. 3. Pp. 60-71.
[8] A.N. Burenin, K.E. Legkov, V.V. Orkin, “Algorithm for adaptive control of information systems under conditions of mass disturbances,” High-Tech in Earth Space Research. 2017. Vol. 9. No. 6. Pp. 90-95.
[9] I.V. Bogachkov, “Detection of strained sections in optical fibers based on the Brillouin reflectometry method,” T-Comm. 2016. Vol. 10. No. 12. Pp. 85-91.
[10] D.S. Chirov, E.O. Lobova, “Wideband hf signals dispersion distortion compensator based on digital filter banks. Theory and approbation,” T-Comm. 2020. Vol. 14. No. 4. Pp. 57-65.
[11] A.S. Kryukovsky, D.S. Lukin, D.V. Rastyagaev, Yu.I. Skvortsova, “Numerical modeling of the propagation of spatio-temporal frequency-modulated radio waves in an anisotropic medium,” T-Comm. 2015. Vol. 9. No. 9. Pp. 40-47.
[12] S.S. Dymkova, “Identifying and implementing successful scientific projects, in the framework of ‘IEEE technology and engineering management society’ events,” 2020 International Conference on Engineering Management of Communication and Technology, EMCTECH 2020. Proceedings. New York, 2020. Pp. 9261533.
[13] O. Varlamov, “Research of influence of DRM broadcast transmitter nonlinearities onto the output signal parameters,” T-Comm. 2014. Vol. 8. No. 2. Pp. 59-60.
[14] V. Tikhvinskiy, E. Deviatkin, A. Aitmagambetov, A. Kulakaeva, “Provision of IoT services for Co-Located 4G/5G networks utilization with dynamic frequency sharing,” 2020 International Conference on Engineering Management of Communication and Technology, EMCTECH 2020: Proceedings, Vienna, October 20-22, 2020. P. 9261526. DOI 10.1109/EMCTECH49634.2020.9261526.
[15] A. Pastukh, V. Tikhvinskiy, S.S. Dymkova, O.V. Varlamov, “Challenges of using the l-band and s-band for direct-to-cellular satellite 5G-6G NTN systems,” Technologies. 2023. Vol. 11. No. 4. Pp. 110.
[16] Pastukh A., Deviatkin E., Tikhvinskiy V., Kulakaeva A., “Compatibility studies between 5G IoT networks and fixed service in the 6425-7125 MHz band, “2021 International Conference on Engineering Management of Communication and Technology, EMCTECH 2021 – Proceedings. 2021. DOI: 10.1109/EMCTECH53459.2021.9619176.
[17] A. Pastukh, V. Tikhvinskiy, E. Devyatkin, A. Kulakayeva, “Sharing studies between 5G IoT networks and fixed service in the 6425-7125 MHz band with Monte Carlo simulation analysis”, Sensors. 2022. Vol. 22. No. 4. DOI: 10.3390/s22041587.