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Towards Electricity Cost Alleviation by Integrating RERs in a Smart Community: A Case Study

机译:通过在智能社区中集成RER来降低电费的案例研究

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The Renewable Energy Resources (RERs) are advantageous in decreasing the carbon emission and energy bill of the users by empowering them to produce their own green energy. However, energy users are not able to sufficiently take paybacks from the RERs without advanced technologies. With the advent of Smart Grids, the potential benefits of RERs and dynamic pricing schemes can be fully exploited. Nonetheless, the big issue is the precise prediction of produced energy by RERs. In current work, we propose an efficient framework which is based on the integration of RERs in a smart community. This framework will be helpful and can be applied for energy management at a community level. We applied the Artificial Neural Network (ANN) model for precise and accurate prediction of produced energy by RERs. Moreover, the considered smart community consists of eighty smart homes and it is also assumed that every consumer has installed RERs including solar panels and wind turbine. Our obtained results show that our proposed framework is suitable for decreasing the energy bill of the smart community. Numerical results indicate that the energy cost of the end customer is reduced by 35 % by installing RERs in smart homes.
机译:可再生能源(RER)通过授权用户生产自己的绿色能源,在减少用户的碳排放和能源费用方面具有优势。但是,如果没有先进技术,能源用户将无法从RER中获得足够的回报。随着智能电网的出现,可以充分利用RER和动态定价方案的潜在优势。尽管如此,最大的问题是RER对产生的能量的精确预测。在当前的工作中,我们提出了一个有效的框架,该框架基于RER在智能社区中的集成。该框架将很有帮助,并可在社区级别应用于能源管理。我们将人工神经网络(ANN)模型应用于RER产生的能量的精确预测。此外,所考虑的智能社区包括80个智能家居,并且还假定每个消费者都安装了RER,包括太阳能电池板和风力涡轮机。我们获得的结果表明,我们提出的框架适合降低智能社区的能源费用。数值结果表明,通过在智能家居中安装RER,最终用户的能源成本降低了35%。

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