首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Development of a Computational Fluid Dynamics Methodology to Reproduce the Effects of Macroturbulence on Wind Turbines and Its Application to the Particular Case of a VAWT
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Development of a Computational Fluid Dynamics Methodology to Reproduce the Effects of Macroturbulence on Wind Turbines and Its Application to the Particular Case of a VAWT

机译:再现大湍流对风力涡轮机影响的计算流体动力学方法的发展及其在VAWT特殊情况下的应用

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Based on existing reports and databases, most of the installations in highly turbulent sites in fact fail to reach the expected energy yield, resulting in still or underperforming turbines that also give bad press for the technology. A better understanding of the real performance of wind turbines under highly turbulent conditions is then pivotal to ensure the economic viability of new installations. To this end, the possible use of computational fluid dynamics (CFD) techniques could provide notable benefits, reducing the time-to-market and the cost with respect to experiments. On the other hand, it is intrinsically not easy to reproduce properly intense and large-scale turbulence with the techniques of common use for research and industry (e.g., CFD unsteady Reynolds-averaged Navier-Stokes (URANS)), while the only methods that are granted to do so (e.g., direct numerical simulation (DNS) or large eddy simulation (LES)) are often not computationally affordable. Moving from this background, this study presents the development of a numerical strategy to exploit at their maximum level the capabilities of an unsteady RANS approach in order to reproduce fields of macroturbulence of use for wind energy applications. The study is made of two main parts. In the first part, the numerical methodology is discussed and assessed based on real wind tunnel data. The benefits and drawbacks are presented also in comparison to other existing methods. In the second part, it has been used to simulate the behavior under turbulence of a H Darrieus vertical-axis wind turbine, for which unique wind tunnel data were available. The simulations, even if preliminary, showed good matching with experiments (e.g., confirming the increase of power), showing then the potential of the method.
机译:根据现有的报告和数据库,实际上,在高度动荡地区的大多数装置都无法达到预期的能源收益,导致涡轮机性能仍然不佳或表现不佳,这也给该技术带来了负面压力。因此,更好地了解风力涡轮机在高度湍流条件下的实际性能至关重要,以确保新装置的经济可行性。为此,可能使用计算流体力学(CFD)技术可以提供显着的好处,从而缩短上市时间并降低实验成本。另一方面,利用研究和工业中常用的技术(例如CFD不稳定的雷诺平均Navier-Stokes(URANS)),固有地重现适当强度和大范围的湍流本质上并不容易,而唯一的方法是通常这样做是不允许的(例如,直接数值模拟(DNS)或大涡流模拟(LES))在计算上难以承受。从这一背景出发,本研究提出了一种数值策略的发展,以最大程度地利用非稳态RANS方法的能力,以便再现风能应用中使用的大湍流场。该研究包括两个主要部分。在第一部分中,基于实际风洞数据讨论并评估了数值方法。与其他现有方法相比,也显示了优点和缺点。在第二部分中,它已用于模拟H Darrieus垂直轴风力涡轮机在湍流下的行为,为此可获得独特的风洞数据。即使是初步的模拟也显示出与实验的良好匹配(例如,确认功率的增加),从而表明了该方法的潜力。

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