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CFD-Based Aeroelastic Sensitivity Study of a Low-Speed Flutter Demonstrator

机译:基于CFD的低速颤振演示器的气弹敏感性研究

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The goal of developing aircraft that are greener, safer and cheaper can only be maintained through significant innovations in aircraft design. An integrated multidisciplinary design approach can lead to an increase in the performance of future derivative aircraft. Advanced aerodynamics and structural design technologies can be achieved by both passive and active suppression of aeroelastic instabilities. To demonstrate the potential of this approach, the EU-funded project Flutter Free Flight Envelope Expansion for Economical Performance Improvement is developing an unmanned aerial vehicle with a high-aspect-ratio-wing and clearly defined flutter characteristics. The aircraft is used as an experimental test platform. The scope of this work is the investigation of the aeroelastic behaviour of the aircraft and the determination of its flutter limits. The modeling of unsteady aerodynamics is performed by means of the small disturbance CFD approach that provides higher fidelity compared to conventional linear-potential-theory-based methods. The CFD-based and the linear-potential-theory-based results are compared and discussed. Furthermore, the sensitivity of the flutter behaviour to the geometric level of detail of the CFD model is evaluated.
机译:开发更绿色,更安全,更便宜的飞机的目标只有通过飞机设计方面的重大创新才能实现。集成的多学科设计方法可以提高未来派生飞机的性能。可以通过被动和主动抑制气动弹性不稳定性来获得先进的空气动力学和结构设计技术。为了证明这种方法的潜力,欧盟资助的旨在提高经济性能的自由飞行信封扩展项目正在开发一种具有高长宽比机翼并明确定义了颤振特性的无人机。该飞机被用作实验测试平台。这项工作的范围是对飞机的空气弹性行为进行研究并确定其扑动极限。非稳态空气动力学建模是通过小扰动CFD方法进行的,与传统的基于线性势理论的方法相比,该方法提供更高的保真度。比较和讨论了基于CFD和基于线性势理论的结果。此外,评估了颤动行为对CFD模型细节的几何级别的敏感性。

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