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首页> 外文期刊>Journal of intelligent material systems and structures >Aero-structural optimization and analysis of a camber-morphing flying wing: Structural and wind tunnel testing
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Aero-structural optimization and analysis of a camber-morphing flying wing: Structural and wind tunnel testing

机译:弧度变形机翼的空气结构优化和分析:结构和风洞测试

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This article presents the design, optimization and performance assessment of a novel structure-actuation morphing concept for a flying wing, enabling the flight control for straight flight and around the pitch and roll axes. The applied camber-morphing concept utilizes an optimized selectively compliant internal structure, combined with electromechanical actuators to achieve a trailing edge deflection. These deflections lead to variations of the local and global lift, permitting to control the flight of the aircraft. The aero-structural behaviour of the wing is analysed using a coupled three-dimensional aerodynamic and structural simulation tool. An optimization of the planform, aerodynamic shape, internal structure and actuation parameters is performed to attain a longitudinally stable and aerodynamically efficient flying wing. The drag increment caused by morphing is minimized through the numerical optimization, resulting in high aerodynamic efficiency across a range of flight speeds. The stiffness and morphing capabilities of the manufactured wing are characterized experimentally and are compared with the numerical predictions, and the aerodynamic and aeroelastic behaviour of the wing is investigated through wind tunnel tests. The test results indicate the ability of the flying wing to achieve sufficient variations in lift, roll and pitch to control the flight completely through camber morphing.
机译:本文介绍了一种新颖的飞翼结构致动变形概念的设计,优化和性能评估,它可以实现对直线飞行以及围绕俯仰和横滚轴的飞行控制。所应用的外倾变形概念利用了优化的选择性顺应性内部结构,并与机电致动器结合以实现后缘偏转。这些偏转导致局部和全局升力的变化,从而可以控制飞机的飞行。使用耦合的三维空气动力学和结构模拟工具分析机翼的空气结构行为。对平面形状,空气动力学形状,内部结构和致动参数进行了优化,以获得纵向稳定且在空气动力学上高效的飞行机翼。通过数值优化将变形引起的阻力增量最小化,从而在一定的飞行速度范围内提高了空气动力学效率。通过实验表征了所制造机翼的刚度和变形能力,并将其与数值预测进行了比较,并通过风洞试验研究了机翼的空气动力学和气动弹性行为。测试结果表明,飞行机翼能够实现足够的升力,侧倾和俯仰变化,以通过外倾变形完全控制飞行。

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