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DROpS: A demand response optimization scheme in SDN-enabled smart energy ecosystem

机译:DROPS:支持SDN的智能能量生态系统中的需求响应优化方案

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With an exponential increase in the utilization of intellective appliances, meeting the energy demand of consumers by traditional power grids is a significant challenge. In integration, the amalgamation of electric vehicles, industrial Internet-of-Things (IoT), and smart communities with power grids has escalated the global energy demand. Consequently, the desideratum for a reliable energy supply and resilient energy ecosystem has incentivized the evolution of Smart Grids (SG). Such intelligent grids are equipped with autonomous controllers and advanced technologies like advanced metering infrastructure, smart sensors, and accounting management software. However, the existing demand response management and energy supply techniques are lagging behind in meeting the desired objectives in the SG ecosystem. In order to handle these challenges, a Demand Replication Optimization Scheme (DROpS) for the smart energy ecosystem is designed in this paper. In addition, a Multi-Leader Multi-Follower Stackelberg game is formulated in this paper to operate with the proposed scheme. However, the success of DROpS depends heavily on real-time communication between the consumers and the suppliers. Hence, dynamic and scalable network architecture is required to handle the seamless data generated by a sizably voluminous number of connected sensors, devices, and smart appliances deployed in the SG. For the successful operation of the architecture, a Software-Defined Networking (SDN)-enabled control scheme for flow management is additionally developed. In the proposed scheme, the SG ecosystem is divided into multiple zones such that the dedicated virtual SDN controllers are deployed for network resource utilization in an optimized manner. The proposed scheme is evaluated using a real smart home test bed and data traces from the Haryana power grid. The effectiveness of the proposed scheme is demonstrated in terms of significant gains observed for load variation and latency. (C) 2018 Elsevi
机译:在利用智慧设备的利用率下,通过传统的电网满足消费者的能源需求是一项重大挑战。在整合中,电动车辆,工业互联网(物联网)和电网的智能社区的融合升级了全球能源需求。因此,用于可靠的能量供应和弹性能量生态系统的船长已经激励了智能电网的演变(SG)。此类智能电网配备了自主控制器和高级计量基础设施,智能传感器和会计管理软件等先进技术。然而,现有的需求响应管理和能源供应技术在满足SG生态系统中的期望目标时滞后。为了处理这些挑战,在本文中设计了智能能量生态系统的需求复制优化方案(DROPS)。此外,在本文中配制了一种多领导的多追随器Stackelberg游戏以与所提出的方案一起操作。然而,下降的成功大幅取决于消费者和供应商之间的实时沟通。因此,需要动态和可伸缩的网络架构来处理由在SG中部署的可伸缩的庞大数量的连接传感器,设备和智能设备产生的无缝数据。对于架构的成功操作,另外开发了一种用于流管理的软件定义的网络(SDN)的控制方案。在所提出的方案中,SG生态系统被分成多个区域,使得专用虚拟SDN控制器以优化的方式部署用于网络资源利用率。使用Real Smart Home Test床和来自Hyacaana Power Grid的数据痕迹来评估所提出的方案。在为负载变异和延迟观察到的显着增益方面证明了所提出的方案的有效性。 (c)2018年elsevi

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