NREL-5MW风力发电机尾流的数据驱动模态分解

IF 1.3 Q2 ENGINEERING, AEROSPACE
S. Cherubini, G. De Cillis, Onofrio Semeraro, S. Leonardi, P. De Palma
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引用次数: 3

摘要

通过两种不同的模态分解,即固有正交分解(POD)和动态模态分解(DMD),分析了由层流均匀流入投资的公用事业规模风力涡轮机产生的尾流的稀疏性促进变体。所考虑的涡轮机为NREL-5MW,叶尖速比λ=7,基于直径的雷诺数为108级。流动通过大涡模拟进行模拟,其中叶片施加的力使用致动器线法进行建模,而塔架和机舱则使用浸没边界法进行建模。对两种模态分解识别的主流结构进行了比较,并出现了一些差异,这些差异对降阶模型的制定具有重要意义。特别是,使用这两种方法都发现了与叶尖涡流直接相关的高频模式,但其排名不同。其他主导模式由大尺度低频结构组成,但频率含量和空间结构不同。能量最高的200 POD模式仅占流动动能的≈20%。当使用相同数量的DMD模式时,可以将流场重建到80%以内的精度。尽管这组模式之间有相似之处,但这些模式分解技术之间的比较指出,基于能量的标准(如POD中使用的标准)可能不适合制定风力涡轮机尾流的降阶模型,而稀疏性促进DMD似乎能够在仅用少数模式重建流场时表现良好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data Driven Modal Decomposition of the Wake behind an NREL-5MW Wind Turbine
The wake produced by a utility-scale wind turbine invested by a laminar, uniform inflow is analyzed by means of two different modal decompositions, the proper orthogonal decomposition (POD) and the dynamic mode decomposition (DMD), in its sparsity-promoting variant. The turbine considered is the NREL-5MW at tip-speed ratio λ=7 and a diameter-based Reynolds number of the order 108. The flow is simulated through large eddy simulation, where the forces exerted by the blades are modeled using the actuator line method, whereas tower and nacelle are modeled employing the immersed boundary method. The main flow structures identified by both modal decompositions are compared and some differences emerge that can be of great importance for the formulation of a reduced-order model. In particular, a high-frequency mode directly related to the tip vortices is found using both methods, but it is ranked differently. The other dominant modes are composed by large-scale low-frequency structures, but with different frequency content and spatial structure. The most energetic 200 POD modes account for ≈20% only of the flow kinetic energy. While using the same number of DMD modes, it is possible to reconstruct the flow field to within 80% accuracy. Despite the similarities between the set of modes, the comparison between these modal-decomposition techniques points out that an energy-based criterion such as that used in the POD may not be suitable for formulating a reduced-order model of wind turbine wakes, while the sparsity-promoting DMD appears able to perform well in reconstructing the flow field with only a few modes.
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来源期刊
CiteScore
2.30
自引率
21.40%
发文量
29
审稿时长
11 weeks
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