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Design of broadband power line communication module for automatic meter reading

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Low-power consumption and long-distance transmission are two problems that have to be solved by the application of broadband power line communication for the automatic meter reading system. To reduce the power consumption of the communication module, based on the analysis of the composition of the power consumption, some methods are proposed. From the communication chip level and the module circuit level, the design scheme of low-power consumption is given. To solve the problem of transmission distance, a frequency band of 2.44 MHz~5.6 MHz is used as the main working frequency band. The communication module supports multiple frequency bands. Using this feature, the optimal frequency band is adaptively selected for communication and automatic switching, which further improve the transmission distance. Field application shows that the above methods effectively decrease the power consumption of the communication module and extend the transmission distance.
Rocznik
Strony
771--780
Opis fizyczny
Bibliogr. 12 poz., rys., tab., wz.
Twórcy
autor
  • Shandong Polytechnic China
autor
  • Shandong Polytechnic China
Bibliografia
  • [1] Sharma Konark, Lalit Mohan Saini, Power-line communications for smart grid: Progress, challenges, opportunities and status, Renewable and Sustainable Energy Reviews, vol. 67, pp. 704–751 (2017).
  • [2] Kim Dong Sik, Beom Jin Chung, Young Mo Chung, Statistical Learning for Service Quality Estimation in Broadband PLC AMI, Energies, vol. 12, no. 4, p. 684 (2019).
  • [3] Van de Kaa G. et al., Realizing smart meter connectivity: Analyzing the competing technologies Power line communication, mobile telephony, and radio frequency using the best worst method, Renewable and Sustainable Energy Reviews, vol. 103, pp. 320–327 (2019).
  • [4] Gao Feng, Dong Yabo, Signal transmission characteristic analysis in low voltage power line carrier communication, Automation of Electric Power Systems, vol. 24, no. 7, pp. 36–40 (2000).
  • [5] Zhang Xiaowu, Tu Rongjiang, Wang Shengqi, New Technology of High Speed Power Line Carrier Communication, Automation of Electric Power Systems, vol. 24, no. 20, pp. 62–63 (2000).
  • [6] Guo Yihe, Huo Ran et al., Modeling of Low Voltage Power Line as Broadband Communication Channel, Proceeding of the CSEE, vol. 39, no. 21, pp. 6300–6308 (2019).
  • [7] Miao Hongying, Gao Yin Wang Song, Broadband Power Line Carrier Communication Technology and its Applications in Electric Energy Data Acquisition System, North China Electric Power (2015).
  • [8] Yuan Zhou, Liu Jianming, Zhao Bingzhen, Low-voltage power line channel environment and the application analysis in smart grid, China International Conference on Electricity Distribution (2012).
  • [9] IEEE Std 1901.1T M -2018, IEEE Standard for Medium Frequency (less than 12 MHz) Power Line Communications for Smart Grid Applications (2018).
  • [10] Liu Jianming, Zhao Bingzhen et al., Current situations and future developments of PLC technology in China, IEEE International Symposium on Power Line Communications and Its Applications (2012), DOI: 10.1109/ISPLC.2012.6201280.
  • [11] Power user electric energy data acquisition system testing technical specification Part 4: Communication Unit, State Grid Corporation of China, QGDW 1379.4 (2013).
  • [12] Power user electric energy data acquisition system testing technical specification Part 3: Concentrate meter reading terminal, State Grid Corporation of China, QGDW 1379.3 (2013).
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-40cfb860-3ab5-4da0-a19a-bc9557ef7781
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