考虑故障后网络重构的海上风电场集电系统基于可靠性的电缆布局规划

IF 8.6 1区 工程技术 Q1 ENERGY & FUELS IEEE Transactions on Sustainable Energy Pub Date : 2024-09-17 DOI:10.1109/TSTE.2024.3462476
Xiaochi Ding;Yunfei Du;Xinwei Shen;Qiuwei Wu;Xuan Zhang;Nikos D. Hatziargyriou
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引用次数: 0

摘要

集热器系统(ECS)在决定海上风电场(owf)的性能方面起着至关重要的作用。现有的研究主要将ECS电缆布局限制在传统的径向或环状结构,并采用图论启发式方法求解。然而,owf的经济效益和可靠性在很大程度上取决于其ECS结构,而最优的ECS电缆布局往往偏离典型配置。在此背景下,本文提出了一种基于可靠性的大型风力发电机组ECS电缆布放规划方法,该方法采用两阶段随机规划方法来解决风力和突发事件的不确定性。为了提高可靠性,该模型结合了故障后网络重构的最优策略,通过链路电缆调整风电机组供电路径。为了解决众多偶然性场景带来的计算挑战,开发了自定义渐进偶然性合并(CPCI)框架,通过迭代识别非平凡场景并求解简化问题,提高了模型的求解效率。从理论上证明了算法的收敛性和最优性。在多个实际owf上的数值试验验证了充分优化ECS结构的必要性,并证明了CPCI算法的有效性。
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Reliability-Based Planning of Cable Layout for Offshore Wind Farm Electrical Collector System Considering Post-Fault Network Reconfiguration
The electrical collector system (ECS) plays a crucial role in determining the performance of offshore wind farms (OWFs). Existing research has predominantly restricted ECS cable layouts to conventional radial or ring structures and employed graph theory heuristics for solutions. However, both economic efficiency and reliability of the OWFs heavily depend on their ECS structure, and the optimal ECS cable layout often deviates from typical configurations. In this context, this paper introduces a novel reliability-based ECS cable layout planning method for large-scale OWFs, employing a two-stage stochastic programming approach to address uncertainties of wind power and contingencies. To enhance reliability, the model incorporates optimal post-fault network reconfiguration strategies by adjusting wind turbine power supply paths through link cables. To tackle computation challenges arising from numerous contingency scenarios, a customized progressive contingency incorporation (CPCI) framework is developed to solve the model with higher efficiency by iteratively identifying non-trivial scenarios and solving the simplified problems. The convergence and optimality are theoretically proven. Numerical tests on several real-world OWFs validate the necessity of fully optimizing ECS structures and demonstrate the efficiency of the CPCI algorithm.
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来源期刊
IEEE Transactions on Sustainable Energy
IEEE Transactions on Sustainable Energy ENERGY & FUELS-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
21.40
自引率
5.70%
发文量
215
审稿时长
5 months
期刊介绍: The IEEE Transactions on Sustainable Energy serves as a pivotal platform for sharing groundbreaking research findings on sustainable energy systems, with a focus on their seamless integration into power transmission and/or distribution grids. The journal showcases original research spanning the design, implementation, grid-integration, and control of sustainable energy technologies and systems. Additionally, the Transactions warmly welcomes manuscripts addressing the design, implementation, and evaluation of power systems influenced by sustainable energy systems and devices.
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