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首页> 外文期刊>IEEE Transactions on Power Systems >Two-Stage Multi-Objective Unit Commitment Optimization Under Hybrid Uncertainties
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Two-Stage Multi-Objective Unit Commitment Optimization Under Hybrid Uncertainties

机译:混合不确定性下的两阶段多目标机组组合优化

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摘要

Unit commitment, as one of the most important control processes in power systems, has been studied extensively in the past decades. Usually, the goal of unit commitment is to reduce as much production cost as possible while guaranteeing the power supply operated with a high reliability. However, system operators encounter increasing difficulties to achieve an optimal scheduling due to the challenges in coping with uncertainties that exist in both supply and demand sides. This study develops a day-ahead two-stage multi-objective unit commitment model which optimizes both the supply reliability and the total cost with environmental concerns of thermal generation systems. To tackle the manifold uncertainties of unit commitment in a more comprehensive and realistic manner, stochastic and fuzzy set theories are utilized simultaneously, and a unified reliability measurement is then introduced to evaluate the system reliability under the uncertainties of both sudden unit outage and unforeseen load fluctuation. In addition, a cumulative probabilistic method is proposed to address the spinning reserve optimization during the scheduling. To solve this complicated model, a multi-objective particle swarm optimization algorithm is developed. Finally, a series of experiments were performed to demonstrate the effectiveness of this research; we also justify its feasibility on test systems with generation uncertainty.
机译:机组承诺作为电力系统中最重要的控制过程之一,在过去的几十年中已得到广泛研究。通常,单位承诺的目标是在保证电源以高可靠性运行的同时,尽可能降低生产成本。然而,由于应对供需双方都存在的不确定性的挑战,系统运营商在实现最佳调度方面遇到越来越大的困难。这项研究开发了一个日前两阶段多目标机组承诺模型,该模型优化了发电系统的供应可靠性和总成本,并考虑了环境因素。为了更全面,更现实地解决机组承诺的各种不确定性,同时采用随机和模糊集理论,然后引入统一的可靠性度量方法,以评估突然出现机组故障和不可预见的负载波动的不确定性下的系统可靠性。 。此外,提出了一种累积概率方法来解决调度过程中的纺纱储备优化问题。为了解决这个复杂的模型,开发了一种多目标粒子群优化算法。最后,进行了一系列实验以证明这项研究的有效性。我们还证明了其在具有发电不确定性的测试系统上的可行性。

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