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Networking of Smart Meters Based on Time-Varying Feature of Low-Voltage Power Line Channel in Microgrid

机译:基于微电网中低压电力线通道时变特征的智能仪表网络

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In order to manage the electricity consumption information of microgrid users, the reliability of electricity information collection is studied in this paper. The normal communication between the acquisition terminal and the smart meter is a key factor affecting the accurate collection of power information; it is the basis for ensuring the operation of the microgrid as well. In order to improve the reliability of the low power line communication between the acquisition terminal and smart meters, this article first uses the static networking method to layer the smart meters and select relays from them and then select the optimal communication path based on integrating communication quality and relay forwarding number dynamically, which could avoid the signal conflict problem caused by simultaneous communication. Finally, by analyzing the influence of the time-varying power line channel on the smart meter communication, a method based on the integrated communication quality and the relay number to consider the time variability of low power line communication is proposed. Choosing the optimal path of the smart meters when the communication path is abnormal can not only establish a new communication path for communication in time, but also avoid communication failures caused by the time-varying channel. Through MATLAB simulation, the time-varying dynamic network of the power line channel is introduced in this paper, which improves the reliability of the smart meter communication and has certain guiding significance for the actual smart meter network construction in microgrid.
机译:为了管理微电网用户的电力消耗信息,本文研究了电力信息收集的可靠性。采集终端和智能仪表之间的正常通信是影响准确收集电力信息的关键因素;这是确保微普林机的运行的基础。为了提高采集终端和智能电表之间的低功耗线路通信的可靠性,本文首先使用静态网络方法来分层智能电表,然后根据集成通信质量选择最佳通信路径。动态和中继转发号码,这可以避免通过同时通信引起的信号冲突问题。最后,通过分析时变电力线通道对智能仪表通信的影响,提出了一种基于集成通信质量和中继号的方法,以考虑低功率线通信的时间变化。选择智能电表的最佳路径时通信路径异常时不仅可以建立一个新的通信路径,还避免了由时变通道引起的通信故障。通过MATLAB仿真,本文介绍了电力线通道的时变动态网络,这提高了智能仪表通信的可靠性,并且对微电网中的实际智能仪表网络结构具有一定的指导意义。

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