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基于小波递归神经网络和云计算的智能电网优化管理协同策略。

Cooperative Strategy for Optimal Management of Smart Grids by Wavelet RNNs and Cloud Computing.

出版信息

IEEE Trans Neural Netw Learn Syst. 2016 Aug;27(8):1672-85. doi: 10.1109/TNNLS.2015.2480709. Epub 2015 Oct 29.

Abstract

Advanced smart grids have several power sources that contribute with their own irregular dynamic to the power production, while load nodes have another dynamic. Several factors have to be considered when using the owned power sources for satisfying the demand, i.e., production rate, battery charge and status, variable cost of externally bought energy, and so on. The objective of this paper is to develop appropriate neural network architectures that automatically and continuously govern power production and dispatch, in order to maximize the overall benefit over a long time. Such a control will improve the fundamental work of a smart grid. For this, status data of several components have to be gathered, and then an estimate of future power production and demand is needed. Hence, the neural network-driven forecasts are apt in this paper for renewable nonprogrammable energy sources. Then, the produced energy as well as the stored one can be supplied to consumers inside a smart grid, by means of digital technology. Among the sought benefits, reduced costs and increasing reliability and transparency are paramount.

摘要

高级智能电网有多个电源,它们以自身不规则的动态为电力生产做出贡献,而负载节点则具有另一种动态。在使用自有电源满足需求时,需要考虑多个因素,例如:发电率、电池充电状态和电量、外部购买能源的可变成本等。本文的目的是开发适当的神经网络架构,以自动和连续地管理电力生产和调度,从而在长时间内实现整体效益最大化。这种控制将改善智能电网的基础工作。为此,必须收集几个组件的状态数据,然后需要对未来的电力生产和需求进行估计。因此,在本文中,神经网络驱动的预测非常适合可再生的不可编程能源。然后,通过数字技术,可以将产生的能源以及存储的能源供应给智能电网中的消费者。在寻求的利益中,降低成本和提高可靠性和透明度至关重要。

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