Modelling the Aerodynamics of a Floating Wind Turbine Model Using a CFD-Based Actuator Disc Method

Ryan Bezzina, T. Sant, D. Micallef
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引用次数: 2

Abstract

Significant research in the field of Floating Offshore Wind Turbine (FOWT) rotor aerodynamics has been documented in literature, including validated aerodynamic models based on Blade Element Momentum (BEM) and vortex methods, amongst others. However, the effects of platform induced motions on the turbine wake development downstream of the rotor plane or any research related to such areas is rather limited. The aims of this paper are two-fold. Initially, results from a CFD-based Actuator Disc (AD) code for a fixed (non-surging) rotor are compared with those obtained from a Blade Element Momentum (BEM) theory, as well as previously conducted experimental work. Furthermore, the paper also emphasises the effect of tip speed ratio (TSR) on the rotor efficiency. This is followed by the analysis of floating wind turbines specifically in relation to surge displacement, through an AD technique implemented in CFD software, ANSYS Fluent®. The approach couples the Blade Element Theory (BET) for estimating rotating blade loads with a Navier Stokes solver to simulate the turbine wake. With regards to the floating wind turbine cases, the code was slightly altered such that BET was done in a transient manner i.e. following sinusoidal behaviour of waves. The AD simulations were performed for several conditions of TSRs and surge frequencies, at a constant amplitude. Similar to the fixed rotor analysis, significant parameters including thrust and power coefficients, amongst others, were studied against time and surge position. The floating platform data extracted from the AD approach was compared to the non-surging turbine data obtained, to display platform motion effects clearly. Data from hot wire near wake measurements and other simulation methods were also consulted.
基于cfd驱动盘法的浮式风力机空气动力学建模
浮式海上风力发电机(FOWT)转子空气动力学领域的重要研究已被文献记载,包括基于叶片元动量(BEM)和涡方法的有效空气动力学模型等。然而,平台诱导运动对旋翼平面下游涡轮尾迹发展的影响以及与此相关的研究相当有限。本文的目的是双重的。首先,将基于cfd的致动盘(AD)代码的结果与叶片单元动量(BEM)理论的结果以及先前进行的实验工作进行了比较。此外,本文还强调了叶尖速比(TSR)对转子效率的影响。随后,通过CFD软件ANSYS Fluent®中实现的AD技术,对浮动式风力涡轮机进行了分析,特别是与浪涌位移相关的分析。该方法将叶片单元理论(BET)与Navier - Stokes求解器相结合,用于估算叶片旋转载荷,模拟涡轮尾迹。关于浮动风力涡轮机的情况,代码略有改变,使BET以瞬态方式完成,即遵循波的正弦行为。在恒定振幅下,对几种tsr和浪涌频率条件进行了AD模拟。与固定转子分析类似,推力和功率系数等重要参数随时间和喘振位置的变化进行了研究。将AD方法提取的浮动平台数据与获得的无喘振涡轮数据进行对比,清晰地显示平台运动效果。还参考了热丝近尾迹测量和其他模拟方法的数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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