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Parametric slat design study for thick-base airfoils at high Reynolds numbers

机译:高雷诺数厚基翼型的参数板设计研究

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Standard passive aerodynamic flow control devices such as vortex generators and gurney flaps have a working principle that is well understood. They increase the stall angle and the lift below stall and are mainly applied at the inboard part of wind turbine blades. However, the potential of applying a rigidly fixed leading-edge slat element at inboard blade stations is less well understood but has received some attention in the past decade. This solution may offer advantages not only under steady conditions but also under unsteady inflow conditions such as yaw. This article aims at further clarifying what an optimal two-element configuration with a thick main element would look like and what kind of performance characteristics can be expected from a purely aerodynamic point of view. To accomplish this an aerodynamic shape optimization procedure is used to derive optimal profile designs for different optimization boundary conditions including the optimization of both the slat and the main element. The performance of the optimized designs shows several positive characteristics compared to single-element airfoils, such as a high stall angle, high lift below stall, low roughness sensitivity, and higher aerodynamic efficiency. Furthermore, the results highlight the benefits of an integral design procedure, where both slat and main element are optimized, over an auxiliary one. Nevertheless, the designs also have two caveats, namely a steep drop in lift post-stall and high positive pitching moments.
机译:标准无源空气动力控制装置,如涡流发电机和Gurney襟翼具有很好的理解原理。它们增加了失速角度和升降机,并且主要用于风力涡轮机叶片的内侧部分。然而,在舷内刀片站上施加刚性固定的前缘板块的可能性较小地理解,但在过去十年中得到了一些关注。该解决方案可能不仅在稳定条件下提供优势,而且在偏航之类的不稳定流入条件下提供优势。本文旨在进一步阐明具有厚主元素的最佳双元素配置,可以看出,可以从纯粹的空气动力学的角度来望预期什么样的性能特征。为了实现这种空气动力学形状优化程序,用于导出用于不同优化边界条件的最佳轮廓设计,包括SLAT和主元件的优化。优化设计的性能显示与单元素翼型相比的几个正特性,例如高失速角度,低升力低于失速,低粗糙度灵敏度和更高的空气动力学效率。此外,结果突出了整体设计过程的益处,其中SLAT和主元件都经过优化,在辅助1上。尽管如此,设计也有两个警告,即升降机后陡峭的延伸和高积极的投球时刻。

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