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Simulation-based aerodynamic design of high-lift devices in ground effect.

机译:地面效应中基于仿真的高升力设备的空气动力学设计。

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A simulation-based aerodynamic design tool is developed for multi-element high-lift airfoils operating in ground effect. A control theory approach is adopted, using the compressible Navier-Stokes equations as the basis for viscous design of airfoil element shapes and relative positioning.; Particular considerations of aerodynamic design, high-lift systems, and the ground effect are described, and the suitability of aerodynamic shape optimization of such systems is discussed. The model of fluid flow and its discretization for solution on digital computers is investigated. A cell-centered finite-volume explicit multigrid method is used to solve both the flow and adjoint systems utilizing structured multiblock meshes. The adjoint equations for shape optimization are developed using a continuous adjoint formulation, and implemented with a moving ground boundary condition for the first time. A suite of test cases verified and validated the numerical algorithms and implementation. Realistic case studies were performed, demonstrating significant performance improvements over the baseline configurations. These included two free-air multi-element airfoil drag minimizations, and in addition two inverted two-element airfoil drag minimizations in ground effect.
机译:开发了基于仿真的空气动力学设计工具,用于在地面作用下运行的多元素高升力机翼。采用控制理论方法,以可压缩的Navier-Stokes方程为基础,对翼型元件形状和相对位置进行粘性设计。描述了空气动力学设计,高升力系统和地面效应的特殊考虑,并讨论了此类系统的空气动力学形状优化的适用性。研究了流体流动模型及其在数字计算机上的离散化解决方案。以单元为中心的有限体积显式多重网格方法用于利用结构化多块网格求解流动系统和伴随系统。使用连续伴随公式开发用于形状优化的伴随方程,并首次使用移动地面边界条件进行实施。一组测试用例验证并验证了数值算法和实现。进行了实际的案例研究,证明了在基准配置上的显着性能改进。其中包括两个自由空中多元素翼型阻力最小化,以及两个地面效应中倒置的两个元素的翼型阻力最小化。

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