用于大升力飞机尾流系统仿真的数据驱动致动器线方法

IF 2.5 3区 工程技术 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
S. Bennie , P. Nagy , M. Fossati
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引用次数: 0

摘要

在这里,执行器线方法与数据驱动方法相结合,用于研究由不同水平的高升力装置偏转的起降配置产生的飞机诱导尾涡。结果表明,通过将执行器线方法与基于高保真CFD求解数据的跨向气动力分布建立的合适的降阶模型相结合。从几何形状产生的尾迹可以以一种不再需要在模拟环境中明确表示飞机几何形状的方式再现。在研究飞机起飞、爬升、进近和降落过程中相关的尾流动力学和演变时,该方法可以提高对旋涡远场的保真度。通过与传统的高保真近场推导结果的直接比较,评估了所提出方法的准确性,其中观察到诱导的下游速度剖面和旋涡结构的最终位置显示出令人满意的一致性。随着这种方法的创建,飞机高升力部署变化的影响可以以尊重当前硬件计算限制的方式包括在下游涡对的模拟中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A data-driven actuator-line methodology for the simulation of high-lift aircraft wake systems
The actuator-line method is here integrated with a data-driven approach for the investigation of aircraft-induced trailing vortices as generated by landing and take-off configurations with varying levels of high-lift device deflections. It is shown that through coupling the Actuator-Line-Method to a suitable Reduced-Order-Model built upon spanwise aerodynamic force distributions obtained from high-fidelity CFD solution data. The resulting wake from the geometry can be reproduced in a manner that no longer requires an explicit representation of the aircraft geometry within the simulation environment. The result is a method that allows for increased fidelity in the vortex farfield when studying the relevant wake dynamics and evolution during take-off, climb, approach and landing. The accuracy of the proposed method is assessed via a direct comparison to traditional high-fidelity nearfield derived results where it was observed that the induced downstream velocity profile and resulting location of vortex structures displayed a satisfactory level of agreement. With the creation of such a method, the effects of variations in aircraft high-lift deployment can be included within the simulation of downstream vortex pairs in a manner that respects the computational limitations of current hardware.
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来源期刊
Computers & Fluids
Computers & Fluids 物理-计算机:跨学科应用
CiteScore
5.30
自引率
7.10%
发文量
242
审稿时长
10.8 months
期刊介绍: Computers & Fluids is multidisciplinary. The term ''fluid'' is interpreted in the broadest sense. Hydro- and aerodynamics, high-speed and physical gas dynamics, turbulence and flow stability, multiphase flow, rheology, tribology and fluid-structure interaction are all of interest, provided that computer technique plays a significant role in the associated studies or design methodology.
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