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Self-adaptive agent modelling of wind farm for energy capture optimisation

机译:风电场的自适应代理建模以优化能量捕获

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摘要

AbstractTypical approaches to wind turbines placement problem take into account the wind distribution and wake effects to maximise the total aggregate farm’s energy production in a centralisedtop–downoptimisation problem. An alternative approach, however, is yet to be addressed as the problem can be instead modelled in a decentralisedbottom–upmanner emulating a system of self-adaptive agents. The potential advantages of this is that it offers easier scalability for high dimension problems as well as it enables an easier adaptation to the complex structure of the design problem. This paper contributes to this and presents an evolutionary algorithm to model and solve the wind farm layout design problem as a system of interrelated agents. The framework is applied to problems with different complexities where the quality of the results is examined. The convergence and scalability of the suggested technique indicate promising results for small to large scale wind farms, which, in turn, encourage the application of such an evolutionary based algorithm for real world wind farm design problem.
机译: Abstract 解决风力涡轮机放置问题的典型方法考虑了风的分布和尾流影响在集中化的自上而下优化问题中最大化农场的总能源产量。但是,另一种方法尚待解决,因为该问题可以用分散的 Bottom-up manner建模来模拟自适应代理系统。这样做的潜在优点是,它为高维问题提供了更容易的可伸缩性,并且使设计问题的复杂结构更容易适应。本文对此做出了贡献,并提出了一种进化算法来建模和解决作为相互关联的代理系统的风电场布局设计问题。该框架适用于检查结果质量的具有不同复杂性的问题。所建议技术的收敛性和可扩展性表明,从小到大的风电场都有希望的结果,这反过来鼓励这种基于进化的算法在现实世界中的风电场设计问题中的应用。

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