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Optimal wind-turbine micro-siting of offshore wind farms: A grid-like layout approach

机译:海上风电场的最佳风轮机微选址:网格状布局方法

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This paper presents a new approach for the optimization of the layout of offshore wind farms. Almost all previous work on optimal micro-siting for large offshore wind farms have been based on irregular arrangements of wind turbines. However, most offshore wind farms already built are configured in symmetrical/ regular layouts. From a mathematical point of view, the geometrical relationships of such symmetrical layouts enable the problem to be defined by just a few variables. This presents a considerable advantage compared with irregular arrangements where the number of variables is directly linked to both the number of wind turbines and the number of cells in which the computational domain is discretized. In contrast, symmetrical layouts are more demanding with regard to the optimization process, since the problem constraints, such as the shape of the available exploration area to deploy the project, the maximum surface allowed, and the maximum number of wind turbines, drastically increase the nonlinearity of the objective function, which affects the ability of the optimization algorithm to achieve the optimal solution. This work compares the behaviour of two meta-heuristic optimization algorithms (the Genetic Algorithm and Particle Swarm Optimization) in solving the addressed problem and, more importantly, it introduces a series of improvements on the objective function, which enhance the behaviour of the optimization algorithms when dealing with realistic constraints, such as the shape of the concession zone and maximum deployable area. Finally, the performance of the proposed methodologies has been tested under two situations. The first scenario is a small-sized hypothetical offshore wind farm. In the second scenario, the layout of a real project (Horns Rev 3 offshore wind farm) has been optimized and compared with the solutions proposed by the Danish transmission system operator. The results obtained show the ability of the proposed tools to successfully show the ability of the proposed tools to optimize offshore wind farms under realistic considerations. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一种优化海上风电场布局的新方法。以前,针对大型海上风电场进行最佳微选址的几乎所有工作都是基于风力涡轮机的不规则布置。但是,大多数已建成的海上风电场均采用对称/规则布局进行配置。从数学的角度来看,这种对称布局的几何关系使得仅需几个变量即可定义问题。与不规则布置相比,这提供了相当大的优势,在不规则布置中,变量的数量直接与风力涡轮机的数量和离散化计算域的单元的数量都相关。相比之下,就优化过程而言,对称布局的要求更高,因为问题的约束(例如可用于部署项目的可用勘探区域的形状,允许的最大表面以及最大的风力涡轮机数量)会大大增加目标函数的非线性,这影响了优化算法获得最优解的能力。这项工作比较了两种元启发式优化算法(遗传算法和粒子群优化)在解决所解决问题方面的行为,更重要的是,它对目标函数进行了一系列改进,从而增强了优化算法的行为在处理实际约束时,例如特许区的形状和最大可部署区域。最后,在两种情况下测试了所提出方法的性能。第一种情况是假设的小型海上风电场。在第二种情况下,已对实际项目(Horns Rev 3海上风电场)的布局进行了优化,并与丹麦输电系统运营商提出的解决方案进行了比较。所获得的结果表明了拟议工具能够成功展示拟议工具在现实考虑下优化海上风电场的能力。 (C)2017 Elsevier Ltd.保留所有权利。

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