为风力涡轮机涡流的气动伺服弹性大涡流模拟建立自动化框架

A. Patel, E. Muller, F. Houtin-Mongrolle
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引用次数: 0

摘要

在过去的二十年里,学术界通过在大量专为大气流动设计的大涡流模拟求解器中实施致动器线法,对风力涡轮机的激波进行了广泛的研究。然而,虽然这种方法在计算上可以满足特别深入研究的需要,但在工业领域却很少使用。其中一个主要原因是模拟过程的复杂性,为了获得有价值的输出结果,仍需对多个方面进行仔细研究。本文旨在介绍一种工作流程,该流程可将对风力涡轮机进行气动伺服弹性大涡流模拟所需的不同步骤合并起来并实现自动化。特别是,基于精确保守水平集函数的策略被用于标记风浪传播区域。这样就能自动推导出在任何时候都能覆盖湍流的细化区域。这种通用程序可无缝应用于各种电场布局和流入条件。为了展示该工作流程的能力,我们将其应用于几种配置,包括不同流入条件下的一到七个风力涡轮机。据观察,较低的风速需要较大的网格来充分捕捉尾流动力学。总体而言,该工作流程在实现流程标准化的同时,还大大减少了所需的人力。从工业角度来看,这一点非常重要,因为参数研究通常是设计过程的一部分。
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Towards an automated framework for Aero-Servo-Elastic Large Eddy Simulation of wind turbine wakes
During the last two decades, wind turbine wakes have been extensively studied in academia by implementing the Actuator Line method in numerous Large Eddy Simulation solvers tailored for atmospheric flows. However, and while being computationally affordable for ad hoc deep investigations, this approach remains barely used in industry. One of the leading causes is the complexity of the simulation process, which still involves several aspects to be carefully looked at to get valuable results in output. This paper aims to present a workflow that merges and automates the different steps required to conduct aero-servo-elastic Large Eddy Simulations of wind turbines. In particular, a strategy based on an Accurate Conservative Level Set function is used to flag the regions where wakes propagate. This allows to automatically derive refinement zones that cover the wakes at all times. This generic procedure can be seamlessly applied to various farm layouts and inflow conditions. To display the capabilities of the workflow, it is applied to several configurations, including one to seven wind turbines for different inflow conditions. It is observed that lower wind speeds require larger mesh to capture the wake dynamics adequately. Overall, the workflow offers the added advantage of significantly reducing the required human effort while standardizing the process. This is important from an industrial perspective, wherein parametric studies are usually carried out as part of the design process.
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