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Optimizing wind farms layouts for maximum energy production using probabilistic inference: Benchmarking reveals superior computational efficiency and scalability

机译:优化风电场使用概率推理的最大能源生产的布局:基准揭示了卓越的计算效率和可扩展性

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Successful development of wind farms relies on the optimal siting of wind turbines to maximize the power capacity under stochastic wind conditions and wake losses caused by neighboring turbines. This paper presents a novel method to quickly generate approximate optimal layouts to support infrastruc-ture design decisions. We model the quadratic integer formulation of the discretized layout design problem with an undirected graph that succinctly captures the spatial dependencies of the design pa-rameters caused by wake interactions. On the undirected graph, we apply probabilistic inference using sequential tree-reweighted message passing to approximate turbine siting. We assess the effectiveness of our method by benchmarking against a state-of-the-art branch and cut algorithm under varying wind regime complexities and wind farm discretization resolutions. For low resolutions, probabilistic infer-ence can produce optimal or nearly optimal turbine layouts that are within 3% of the power capacity of the optimal layouts achieved by state-of-the-art formulations, at a fraction of the computational cost. As the discretization resolution (and thus the problem size) increases, probabilistic inference produces optimal layouts with up to 9% more power capacity than the best state-of-the-art solutions at a much lower computational cost.(c) 2021 Elsevier Ltd. All rights reserved.
机译:风电场的成功发展依赖于风力涡轮机的最佳选址,以最大化随机风力条件下的电力容量和由邻近涡轮机引起的唤醒损失。本文提出了一种快速生成近似最佳布局的新方法,以支持基础设施设计决策。我们使用一个无向图的离散布局设计问题模型,用一个无向图,简洁地捕获由唤醒交互引起的设计PA-rameter的空间依赖性。在无向图中,我们使用通过传递到近似涡轮选址的顺序树重新重量消息应用概率推断。我们通过针对最先进的分支和剪切算法的基准测试来评估我们的方法的有效性,并在不同的风力制度复杂性和风力场离散化决议下进行了基准。对于低分辨率,概率推断可以产生最佳或近最佳的涡轮布局,该涡轮布局在最先进的配方实现的最佳布局的功率容量的3%范围内,以计算成本的一小部分。作为离散的分辨率(因而问题规模)增大,概率推理产生具有高达比在低得多的计算成本的最佳状态的最先进的解决方案的详细9%的功率容量的优化布局。(c)中2021爱思唯尔公司。 版权所有。

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