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Cloud-Fog Architecture Based Energy Management and Decision-Making for Next-Generation Distribution Network with Prosumers and Internet of Things Devices

机译:基于Cloud-Fog架构的能源管理和决策,下一代分销网络具有检测和物品设备的虚拟机和互联网

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摘要

The increasing penetration of distributed energy resources in next-generation distribution networks has resulted in an explosion of the Internet of Things to upgrade their control and monitoring systems. This poses new challenges for the efficient energy management and reliable decision-making of these systems. This is due to the potentially large amount of data that cannot be handled by the traditional architecture of control and data acquisition systems, which have limited storage and computation capabilities. In order to adapt to the new energy management requirements of next-generation distribution networks, a state-of-the-art energy management method called cloud-fog hierarchical architecture is proposed in this work. Based on this architecture, we established a utility and revenue model for various stakeholders, including normal customers, prosumers, and distribution system operators. Furthermore, by embedding an artificial intelligence module in the proposed architecture, energy management could be implemented automatically. Neural networks were used at fog computing layers to achieve regression prediction of energy usage behavior and power source output. Moreover, based on the maximizing utility objective function, the amount of energy consumption of customers and prosumers in the distribution network was optimized with a genetic algorithm at cloud layer. The proposed methods were tested with a set of normal customers and prosumers in a general distribution network, and the results, including the captured usage patterns of the customers and revenues of various stakeholders, verify the effectiveness of the proposed method. This work provides an effective reference for the development of real-time energy management systems for the next-generation distribution network.
机译:下一代分销网络中分布式能源资源的普遍普及导致了升级控制和监控系统的事物互联网爆炸。这对这些系统的有效能源管理和可靠的决策构成了新的挑战。这是由于传统的控制和数据采集系统的传统架构不能处理的潜在大量数据,这具有有限的存储和计算能力。为了适应新一代分销网络的新能源管理要求,在这项工作中提出了一种称为云雾分层体系结构的最先进的能源管理方法。基于此架构,我们为各种利益相关者建立了一个实用性和收入模型,包括普通客户,专业和分配系统运营商。此外,通过在所提出的架构中嵌入人工智能模块,可以自动实现能量管理。神经网络用于雾计算层,实现能量使用行为和电源输出的回归预测。此外,基于最大化的公用事业目标函数,在云层的遗传算法优化了分销网络中客户的能耗和监控量的能耗。在一组正常客户和一般分销网络中进行了建议的方法,并在一般的分销网络中进行了专业,以及包括捕获的客户和各种利益相关者的收入的结果,验证了该方法的有效性。这项工作为开发用于下一代分销网络的实时能源管理系统提供有效参考。

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