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Incorporating Non-Convex Operating Characteristics Into Bi-Level Optimization Electricity Market Models

机译:将非凸操作特性纳入双层优化电力市场模型

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摘要

Bi-level optimization constitutes the most popular mathematical methodology for modeling the deregulated electricity market. However, state-of-the-art models neglect the physical non-convex operating characteristics of market participants, due to their inherent inability to capture binary decision variables in their representation of the market clearing process, rendering them problematic in modeling markets with complex bidding and unit commitment (UC) clearing mechanisms. This paper addresses this fundamental limitation by proposing a novel modeling approach enabling incorporation of these non-convexities into bi-level optimization market models, which is based on the relaxation and primal-dual reformulation of the original, non-convex lower level problem and the penalization of the associated duality gap. Case studies demonstrate the ability of the proposed approach to closely approximate the market clearing solution of the actual UC clearing algorithm and devise more profitable bidding decisions for strategic producers than the state-of-the-art bi-level optimization approach, and reveal the potential of strategic behavior in terms of misreporting non-convex operating characteristics.
机译:双层优化构成了对放松管制的电力市场进行建模的最流行的数学方法。但是,由于他们固有的无法捕获市场清算过程表示中的二元决策变量的能力,因此最新模型忽略了市场参与者的物理非凸面操作特征,从而使他们在使用复杂投标进行市场建模时遇到了问题和单位承诺(UC)清除机制。本文通过提出一种新颖的建模方法来解决这一基本局限,该方法能够将这些非凸性合并到双层优化市场模型中,该方法基于原始,非凸性下层问题的松弛和原始对偶重新形成以及惩罚相关的对偶差距。案例研究表明,与最新的双层优化方法相比,该方法能够逼近实际UC清算算法的市场清算解决方案,并为战略生产者设计更具利润的投标决策,并揭示了其潜力错误举报非凸面经营特征方面的战略行为。

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