Integrated Aerodynamic Shape and Aero-Structural Optimization: Applications from Ahmed Body to NACA 0012 Airfoil and Wind Turbine Blades

Fluids Pub Date : 2024-07-25 DOI:10.3390/fluids9080170
Sagidolla Batay, Aigerim Baidullayeva, Erkhan Sarsenov, Yong Zhao, T. Zhou, E. Ng, Taldaubek Kadylulu
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Abstract

During this research, aerodynamic shape optimization is conducted on the Ahmed body with the drag coefficient as the objective function and the ramp shape as the design variable, while aero-structural optimization is conducted on NACA 0012 to reduce the drag coefficient for the aerodynamic performance with the shape as the design variable while reducing structural mass with the thickness of the panels as the design variables. This is accomplished through a gradient-based optimization process and coupled finite element and computational fluid dynamics (CFD) solvers under fluid–structure interaction (FSI). In this study, DAFoam (Discrete Adjoint with OpenFOAM for High-fidelity Multidisciplinary Design Optimization) and TACS (Toolkit for the Analysis of Composite Structures) are integrated to optimize the aero-structural design of an airfoil concurrently under the FSI condition, with TACS and DAFoam as coupled structural and CFD solvers integrated with a gradient-based adjoint optimization solver. One-way coupling between the fluid and structural solvers for the aero-structural interaction is adopted by using Mphys, a package that standardizes high-fidelity multiphysics problems in OpenMDAO. At the end of the paper, we compare and discuss our findings in the context of existing research, specifically highlighting previous results on the aerodynamic and aero-structural optimization of wind turbine blades.
综合气动外形和气动结构优化:从艾哈迈德机身到 NACA 0012 机翼和风力涡轮机叶片的应用
在这项研究中,以阻力系数为目标函数,以坡道形状为设计变量,对艾哈迈德机身进行了气动形状优化,同时对 NACA 0012 进行了气动结构优化,以形状为设计变量降低阻力系数,从而提高气动性能,同时以面板厚度为设计变量降低结构质量。这是通过基于梯度的优化过程以及流固耦合(FSI)下的有限元和计算流体动力学(CFD)求解器实现的。在本研究中,DAFoam(用于高保真多学科设计优化的离散与 OpenFOAM)和 TACS(复合结构分析工具包)被集成用于在 FSI 条件下同时优化机翼的航空结构设计,TACS 和 DAFoam 作为结构和 CFD 求解器的耦合,并与基于梯度的邻接优化求解器集成。通过使用 Mphys(OpenMDAO 中的高保真多物理场问题标准化软件包),采用了流体和结构求解器之间的单向耦合来处理气动-结构相互作用。在论文的最后,我们结合现有研究对我们的发现进行了比较和讨论,特别强调了以前在风力涡轮机叶片空气动力和空气结构优化方面的成果。
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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