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ANN based optimization of price-based demand response management for solar powered nanogrids

机译:太阳能纳米格栅的价格为基于价格的需求响应管理优化

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The quest for cheap, green and most importantly sustainable supply of electrical power has boosted the employment of renewable energy resources (RERs) in the existing power systems around the globe. The new millennium has witnessed enormous research in the optimized utilization of RERs in the power system to achieve maximum benefits of the RERs. The present body of knowledge records a handsome number of research efforts regarding the optimization techniques of demand response (DR). The main focus of the research efforts presented so far is the use of fixed pricing schemes in the different optimization algorithms. In contrast, the current research effort aims to present real time price (RTP) based demand response. The scheme is implemented considering the residential power system of a modern locality equipped with state of the art loads. A nanogrid (NG) has been developed in MATLAB for testing of the proposed optimization scheme. The simulation model comprises a grid-connected solar PV system supplying the house loads, which are categorized according to their utilization as fixed and flexible loads. An artificial neural network (ANN) is used to schedule flexible loads to maximize profit. The simulation results confirm the fruitfulness of the proposed dynamic pricing scheme, being profitable over the conventional fixed pricing scheme.
机译:寻求廉价,绿色和最重要的电力供应,推动了全球现有电力系统中的可再生能源资源(RERS)的就业。新千年目睹了电力系统中RERS优化利用的巨大研究,以实现RERS的最大益处。目前的知识体记录了关于需求响应的优化技术的研究工作(DR)。到目前为止介绍的研究工作的主要重点是在不同优化算法中使用固定定价方案。相比之下,目前的研究工作旨在呈现基于实时价格(RTP)的需求响应。考虑到配备有艺术载荷状态的现代本地的住宅电力系统实施该方案。在MATLAB中开发了纳米格栅(NG),用于测试所提出的优化方案。仿真模型包括电网连接的太阳能光伏系统,供应房屋负载,其根据其使用作为固定和柔性负载来分类。人工神经网络(ANN)用于安排灵活的负载以最大化利润。仿真结果证实了拟议的动态定价方案的成果,通过传统的固定定价方案有利可图。

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