Maximizing investment value of small-scale PV in a smart grid environment

J. Every, Li Li, Youguang Guo, D. Dorrell
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引用次数: 8

Abstract

Determining the optimal size and orientation of small-scale residential based PV arrays will become increasingly complex in the future smart grid environment with the introduction of smart meters and dynamic tariffs. However consumers can leverage the availability of smart meter data to conduct a more detailed exploration of PV investment options for their particular circumstances. In this paper, an optimization method for PV orientation and sizing is proposed whereby maximizing the PV investment value is set as the defining objective. Solar insolation and PV array models are described to form the basis of the PV array optimization strategy. A constrained particle swarm optimization algorithm is selected due to its strong performance in non-linear applications. The optimization algorithm is applied to real-world metered data to quantify the possible investment value of a PV installation under different energy retailers and tariff structures. The arrangement with the highest value is determined to enable prospective small-scale PV investors to select the most cost-effective system.
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智能电网环境下小型光伏投资价值最大化
随着智能电表和动态电价的引入,在未来的智能电网环境中,确定小型住宅光伏阵列的最佳尺寸和方向将变得越来越复杂。然而,消费者可以利用智能电表数据的可用性,根据他们的特定情况对光伏投资选择进行更详细的探索。本文提出了一种以光伏投资价值最大化为定义目标的光伏定位和规模优化方法。描述了太阳日照和光伏阵列模型,构成了光伏阵列优化策略的基础。由于约束粒子群算法在非线性应用中具有较强的性能,因此选择了约束粒子群算法。将优化算法应用于实际的计量数据,以量化不同能源零售商和电价结构下光伏装置的可能投资价值。确定价值最高的安排是为了使潜在的小规模光伏投资者能够选择最具成本效益的系统。
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