Unit maintenance scheduling by means of fuzzy-game theory, considering uncertainty in rival-Genco's data

A. Bozorgi, M. Pedram, G. Yousefi
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引用次数: 2

Abstract

Gencos, in a restructured power system, try to schedule their generators' maintenance in order to maximize their profit. Besides, Unit Maintenance Scheduling (UMS) as a mid-term plan has a significant effect on the Genco's profit in a power market. In a regulated power system, UMS is usually determined by a central system, such as System Operator (SO). On the other hand, in a de-regulated power system, UMS is determined through multiple interactions between the market players, mainly Gencos and SO. Considering these, it would be a desire to solve both short term and mid-term problems, in a single framework. In this case, Gencos can offer a price curve with an outlook to mid-term goals in a game-theoretic approach. The approach would be based on some predictions of parameters such as production cost factors. This article, addresses the uncertainty in the cost factors of a Rival-Genco in a fuzzy game theoretic scheme and experimental results show the effectiveness of the proposed approach.
考虑竞争对手电力公司数据不确定性,采用模糊对策理论进行机组维修调度
在重组后的电力系统中,发电公司试图安排其发电机的维护以实现利润最大化。此外,机组维护计划作为一项中期计划,对发电公司在电力市场中的利润有着重要的影响。在一个受调节的电力系统中,UMS通常由一个中央系统决定,如系统操作员(SO)。另一方面,在去管制的电力系统中,统一价格是通过市场参与者之间的多重互动来确定的,主要是发电公司和SO。考虑到这些问题,希望在一个框架内解决短期和中期问题。在这种情况下,Gencos可以用博弈论的方法提供一个具有中期目标前景的价格曲线。该方法将基于对诸如生产成本因素等参数的一些预测。本文用模糊博弈论的方法解决了竞争对手-电力公司成本因素的不确定性问题,实验结果表明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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