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Planning for Mitigation of Variability in Renewable Energy Resources using Temporal Complementarity

机译:使用时间互补性规划缓解可再生能源资源的可变性

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Many regions in the world exhibit temporal complementarity of solar and wind energy. In such regions, during certain time periods, when more solar energy is present, lesser amount of wind energy is available and vice-verse. The motivation of this work is to develop a general planning methodology for the integration of these variable renewable energy (VRE) resources in smart power grids, while exploiting temporal complementarity to minimize the supply demand mismatch. We develop an appropriate analytical framework to determine the total investment needed in such VRE resources and the fraction of the total investment in each resource. A multivariate optimization problem is formulated and an optimal algorithm is developed to determine these parameters. To test the proposed methodology, a case study is developed for a region in Northern Ireland. In this region, based on the historical data of past 10 years and using daily average wind and solar capacity factors, we determine the Pearson correlation coefficient, which turns out to be -0.34, showing a sufficient degree of complementarity (anti-correlation) between solar and wind energy. Planning parameters are determined for different load profiles in our case study. General conclusion of the work is that once the temporal complementarity of solar and wind energy resources is exploited, the net supply variability is significantly reduced in microgrids. However, the total investment costs also increases, which is offset by the savings in the storage costs. In addition, reduced variability also leads to a reduction in storage losses, emissions losses, dispatch losses, fuel costs and network congestion.
机译:世界上许多地区都表现出太阳能和风能在时间上的互补性。在这样的区域中,在某些时间段内,当存在更多的太阳能时,可用的风能就更少,反之亦然。这项工作的目的是开发一种通用计划方法,以将这些可变可再生能源(VRE)资源整合到智能电网中,同时利用时间上的互补性来最大程度地减少供应需求的不匹配。我们开发了一个适当的分析框架,以确定此类VRE资源所需的总投资以及每种资源中总投资的比例。制定了一个多元优化问题,并开发了确定这些参数的最佳算法。为了测试建议的方法,针对北爱尔兰的一个区域进行了案例研究。在该地区,根据过去10年的历史数据,并使用日平均风能和太阳能容量因子,我们确定Pearson相关系数,结果为-0.34,表明两者之间有足够程度的互补性(反相关性)太阳能和风能。在我们的案例研究中,为不同的负载曲线确定了规划参数。这项工作的总体结论是,一旦利用了太阳能和风能资源的时间互补性,微电网的净供应可变性就会大大降低。但是,总投资成本也增加了,这被存储成本的节省所抵消。另外,减少的可变性还导致存储损失,排放损失,调度损失,燃料成本和网络拥塞的减少。

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