Queuing analysis for Smart Grid communications in wireless access networks

Obada Al-Khatib, Wibowo Hardjawana, B. Vucetic
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引用次数: 4

Abstract

The most challenging issue in Smart Grid (SG) communications is the management of a vast amount of SG traffic generated by large number of SG devices in the wireless access network. The wireless access network is leased by the electric utility from a telecommunications operator to connect power substations to numerous number of SG devices, such as phase monitoring units and smart meters. Thus, this access network, referred to as SG access network, carries both Human-to-Human (H2H) communications traffic and SG communications traffic. In this paper, we develop an analytical traffic model for a SG access network carrying H2H and SG traffic based on a priority queuing system. The SG traffic in the SG access network is classified as Fixed-Scheduling (FS) or Event-Driven (ED). The FS traffic is an operational traffic, which occurs on a periodic basis, such as smart meter readings. The ED traffic, which is assumed to have a higher priority, occurs as a response to electricity supply conditions, such as demand response. To date, we have not seen any traffic model for SG access networks, which considers the combination of periodic FS and random ED traffic in addition to H2H traffic. By using the proposed model, we derive expressions for the mean buffer length and mean queuing delay of each traffic. The derived expressions are validated by simulations of a wireless network model using real-world SG traffic profiles from the Ausgrid Smart Grid Smart City project and shown to agree well with the simulations.
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无线接入网中智能电网通信的排队分析
智能电网通信中最具挑战性的问题是如何对无线接入网中大量SG设备产生的大量SG流量进行管理。无线接入网络由电力公司从电信运营商租用,用于将变电站连接到许多SG设备,如相位监控单元和智能电表。因此,该接入网(简称SG接入网)既承载H2H (Human-to-Human)通信流量,又承载SG通信流量。在本文中,我们建立了一个基于优先排队系统的承载H2H和SG业务的SG接入网的业务分析模型。SG接入网中的SG流量分为FS (Fixed-Scheduling)和ED (Event-Driven)两种。FS流量是一种周期性的业务流量,例如智能电表读取。假设具有更高优先级的ED流量是对电力供应条件(如需求响应)的响应。到目前为止,我们还没有看到任何SG接入网的流量模型,该模型除了H2H流量外,还考虑了周期性FS和随机ED流量的组合。利用所提出的模型,我们推导出了每个流量的平均缓冲区长度和平均排队延迟的表达式。推导出的表达式通过使用来自澳大利亚电网智能电网智能城市项目的真实SG流量概况的无线网络模型进行仿真验证,并显示与仿真结果很好地吻合。
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