利用叶栅流研究水平轴风力涡轮机的空气动力学

IF 1.9 4区 工程技术 Q4 ENERGY & FUELS
Narges Golmirzaee, D. Wood
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引用次数: 1

摘要

最简单的水平轴风力涡轮机气动模型是叶片单元动量理论,该理论假设叶片的行为与翼型相似,但正确的二维表示是升力体的无限级联。本研究分析了传统和脉冲形式的力在叶栅上的间距和俯仰角风力发电机的典型应用。使用OpenFOAM软件模拟了NACA 0012翼型叶栅在雷诺数6×106下的稳定不可压缩流动。对于四个间距比,力方程与直接从OpenFOAM中确定的力一致(误差小于1%)。本文主要研究叶片单元动量分析中忽略的“尾迹涡度”项。在俯仰角为90°时,当迎角为零时,该项平衡了粘性阻力。在零俯仰时,它模拟了高叶尖速比的风力涡轮机叶片的外部区域,当迎角约为4°时,该项可占轴向推力的27%。法向力方程,就像风力涡轮机的角动量方程一样,没有粘性项,这迫使身体阻力在尾迹中促进循环。结果表明,翼型假设是保守的,因为在相同的迎角下,叶栅元件比翼型具有更高的升阻比。一个相关的结果是,分离发生在较高的攻角对级联元素相比翼型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating horizontal-axis wind turbine aerodynamics using cascade flows
The simplest aerodynamic model of horizontal-axis wind turbines is the blade element momentum theory, which assumes that the blades behave as airfoils, but a correct two-dimensional representation is an infinite cascade of lifting bodies. This study analyzes the conventional and impulse forms of the forces on cascades of airfoils at spacings and pitch angles typical of wind turbine applications. OpenFOAM software was used to simulate steady, incompressible flow at a Reynolds number of 6×106 through cascades of NACA 0012 airfoils. The force equations agree well (less than 1% error) with the forces determined directly from OpenFOAM for four spacing ratios. We concentrate on the “wake vorticity” term, which is ignored in blade element momentum analysis. At a pitch angle of 90°, this term balances the viscous drag when the angle of attack is zero. At zero pitch, which models the outer region of a wind turbine blade at a high tip speed ratio, the term can account for 27% of the axial thrust when the angle of attack is about 4°. The normal force equation, like the angular momentum equation for wind turbines, has no viscous term, which forces the body drag to contribute to the circulation in the wake. It is shown that the airfoil assumption is conservative in that cascade elements have higher lift-to-drag ratios than airfoils at the same angle of attack. An associated result is that separation occurs at higher angles of attack on a cascade element compared to an airfoil.
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来源期刊
Journal of Renewable and Sustainable Energy
Journal of Renewable and Sustainable Energy ENERGY & FUELS-ENERGY & FUELS
CiteScore
4.30
自引率
12.00%
发文量
122
审稿时长
4.2 months
期刊介绍: The Journal of Renewable and Sustainable Energy (JRSE) is an interdisciplinary, peer-reviewed journal covering all areas of renewable and sustainable energy relevant to the physical science and engineering communities. The interdisciplinary approach of the publication ensures that the editors draw from researchers worldwide in a diverse range of fields. Topics covered include: Renewable energy economics and policy Renewable energy resource assessment Solar energy: photovoltaics, solar thermal energy, solar energy for fuels Wind energy: wind farms, rotors and blades, on- and offshore wind conditions, aerodynamics, fluid dynamics Bioenergy: biofuels, biomass conversion, artificial photosynthesis Distributed energy generation: rooftop PV, distributed fuel cells, distributed wind, micro-hydrogen power generation Power distribution & systems modeling: power electronics and controls, smart grid Energy efficient buildings: smart windows, PV, wind, power management Energy conversion: flexoelectric, piezoelectric, thermoelectric, other technologies Energy storage: batteries, supercapacitors, hydrogen storage, other fuels Fuel cells: proton exchange membrane cells, solid oxide cells, hybrid fuel cells, other Marine and hydroelectric energy: dams, tides, waves, other Transportation: alternative vehicle technologies, plug-in technologies, other Geothermal energy
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