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Optimal electricity tariff design with demand-side investments

机译:随需需求方投资的最佳电力关税设计

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This paper proposes a method for evaluating tariffs based on mathematical programming. In contrast to previous approaches, the technique allows comparisons between portfolios of rates while capturing complexities emerging in modern electricity sectors. Welfare analyses conducted with the method can account for interactions between intermittent renewable generation, distributed energy resources and tariff structures. We explore the theoretical and practical implications of the model that underlies the technique. Our analysis shows that a regulator may induce the welfare maximizing configuration of the demand by properly updating portfolios of tariffs. We exploit the structure of the model to construct a simple algorithm to find globally optimal solutions of the associated nonlinear optimization problem; a computational experiment suggests that the specialized procedure can outperform standard nonlinear programming techniques. To illustrate the practical relevance of the rate analysis method, we compare portfolios of tariffs with data from two electricity systems. Although portfolios with sophisticated rates create value in both, these improvements differ enough to advise different portfolios. This conclusion is beyond the reach of previous techniques to analyze rates, illustrating the importance of using model-based data-driven approaches in the design of rates in modern electricity sectors.
机译:本文提出了一种根据数学规划评估关税的方法。与先前的方法相比,该技术允许比较率之间的比较,同时捕获现代电力部门出现的复杂性。使用该方法进行的福利分析可以解释间歇性再生生成,分布式能源和关税结构之间的相互作用。我们探讨了该技术的模型的理论和实际意义。我们的分析表明,监管机构可以通过适当更新关税组合来促使福利最大化需求的配置。我们利用模型的结构来构建一个简单的算法,找到相关非线性优化问题的全局最优解;计算实验表明,专业程序可以优于标准非线性规划技术。为了说明速率分析方法的实际相关性,我们将关税的投资组合与来自两个电力系统的数据进行比较。虽然具有复杂率的投资组合在两者中创造价值,但这些改进差别足以建议不同的投资组合。该结论超出了以前技术分析率的技术,说明了使用基于模型的数据驱动方法在现代电力部门的率设计中的重要性。

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