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Modeling optimal long-term investment strategies of hybrid wind-thermal companies in restructured power market

机译:重组电力市场中混合风热公司的最佳长期投资策略建模

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摘要

In this paper, a novel framework for the estimation of optimal investment strategies for combined wind-thermal companies is proposed. The medium-term restructured power market was simulated by considering the stochastic and rational uncertainties, the wind uncertainty was evaluated based on a data mining technique, and the electricity demand and fuel price were simulated using the Monte Carlo method. The Cournot game concept was used to determine the Nash equilibrium for each state and stage of the stochastic dynamic programming (DP). Furthermore, the long-term stochastic uncertainties were modeled based on the Markov chain process. The long-term optimal investment strategies were then solved for combined wind-thermal investors based on the semi-definite programming (SDP) technique. Finally, the proposed framework was implemented in the hypothetical restructured power market using the IEEE reliability test system (RTS). The conducted case study confirmed that this framework provides robust decisions and precise information about the restructured power market for combined wind-thermal investors.
机译:在本文中,提出了一个新的框架来估算风电联合公司的最佳投资策略。考虑了随机和理性的不确定性,对中期重组电力市场进行了模拟,基于数据挖掘技术评估了风的不确定性,并使用蒙特卡洛方法对电力需求和燃料价格进行了模拟。使用古诺特博弈概念来确定随机动态规划(DP)的每个状态和阶段的纳什均衡。此外,基于马尔可夫链过程对长期随机不确定性进行了建模。然后,基于半定规划(SDP)技术,为风热联合投资者解决了长期最优投资策略。最后,使用IEEE可靠性测试系统(RTS)在假设的重组电力市场中实施了所提出的框架。进行的案例研究证实,该框架为风热联合投资者提供了有关重组后的电力市场的可靠决策和准确信息。

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