Modeling dynamic stall of an airfoil with vortex generators using a double‐wake panel model with viscous–inviscid interaction

Wind Energy Pub Date : 2023-12-29 DOI:10.1002/we.2889
Wei Yu, Lukas K. Bajarūnas, Alessandro Zanon, Carlos J. S. Ferreira
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Abstract

Vortex generators (VGs) have been widely applied to wind turbines thanks to their potential to increase aerodynamic performance. Due to the complex inflow perceived by a rotor and the proneness to flow separation, VGs on wind turbines usually experience highly unsteady flow. While there are models that exist to simulate the steady effects of VGs, we lack a fast and efficient tool to model the unsteady performance of airfoils equipped with VGs. This paper adopts an unsteady double‐wake panel model with viscous–inviscid interaction developed to simulate a vertical axis turbine in dynamic stall, adding the capability of predicting the dynamic aerodynamic performance of VG‐equipped airfoils. The results of a series of steady and unsteady cases of an airfoil with different VG configurations in various pitch motions in free and forced transition are verified against experimental data. Results show that the double wake model offers results with sufficient accuracy compared with experimental data to claim the model's validity in a preliminary evaluation of an airfoil's capability to prevent stall with VGs. A few limitations, including the accuracy in prediction the transition location, separation, and reattachment, have been identified for future development.
利用粘性-粘性相互作用的双翼面板模型,对带有涡流发生器的机翼的动态失速进行建模
由于涡流发生器(VG)具有提高空气动力性能的潜力,因此被广泛应用于风力涡轮机。由于转子感受到的流入气流非常复杂,而且容易发生气流分离,因此风力涡轮机上的涡流发生器通常会产生高度不稳定的气流。虽然有一些模型可以模拟 VG 的稳定效应,但我们缺乏一种快速高效的工具来模拟装有 VG 的机翼的非稳定性能。本文采用粘性-内粘性相互作用的非稳态双翼面板模型来模拟垂直轴涡轮机的动态失速,增加了预测装有 VG 的机翼动态气动性能的能力。在自由和强制过渡的各种俯仰运动中,对具有不同 VG 配置的机翼进行了一系列稳定和非稳定试验,其结果与实验数据进行了验证。结果表明,与实验数据相比,双尾流模型提供的结果具有足够的准确性,因此该模型在初步评估机翼带VG防止失速的能力时是有效的。同时也发现了一些局限性,包括对过渡位置、分离和重新连接的预测精度,这些都是未来发展的重点。
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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