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A chronological probabilistic production cost model to evaluate the reliability contribution of limited energy plants

机译:用于评估有限能源工厂可靠性贡献的按时间顺序排列的概率生产成本模型

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摘要

The growth of renewables in power systems has reinvigorated research and regulatory interest in reliability analysis algorithms such as the Baleriaux/Booth convolution-based probabilistic production cost (PPC) model. However, while these traditional PPC algorithms can reasonably represent thermal plant availabilities, they do not accurately represent limited energy plants because of their generic treatment of time. In particular, in systems with limited energy plants, convolution-based PPC models tend to underestimate the loss-of-load probability and expected nonserved energy. This thesis illustrates the chronological challenges of the traditional convolution-based PPC, proposes a modification that improves the representation of chronological elements, explores the reliability contribution of LEPs using the new algorithm, and demonstrates two regulatory applications by calculating a capacity payment for an LEP and the expected-load-carrying-capability metric for any generator. To the best knowledge of the author, the introduction of multiple hydro plants with different capacity constraints and the calculations for marginal probabilities, prices, and revenues to a chronological PPC model are novel.
机译:电力系统中可再生能源的增长激发了对可靠性分析算法(例如基于Baleriaux / Booth卷积的概率生产成本(PPC)模型)的研究和监管兴趣。但是,尽管这些传统的PPC算法可以合理地表示热电厂的可用性,但是由于它们对时间的一般处理,它们不能准确地表示有限的能源电厂。尤其是在能源工厂有限的系统中,基于卷积的PPC模型往往会低估负载损失的概率和预期的未服务能量。本文说明了传统基于卷积的PPC的时序挑战,提出了一种改进方案,以改进时序元素的表示形式,使用新算法探索了LEP的可靠性贡献,并通过计算LEP的容量支付和两个规则应用演示了两种监管应用。任何发电机的预期负载能力指标。据作者所知,按时间顺序PPC模型引入具有不同容量限制的多个水电厂以及边际概率,价格和收入的计算是新颖的。

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