Morphing technology for gust alleviation: an UAS application

F. Montano
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Abstract

Abstract. Atmospheric turbulence can significantly affect aircraft missions in terms of aerodynamic loads and vibration. These effects are particularly meaningful for MALE-HALE UAS because of their high aspect ratios and because of their low speed, sometimes comparable with that of the gust itself. Many studies have been conducted to reach the goal of efficient gust alleviation. A viable solution appears the application of morphing technology. However, the design of morphing aircraft is a strongly multidisciplinary effort involving different expertise from structures to aerodynamics and flight control. In this study, a multidisciplinary wing-and-tail morphing strategy is proposed for attaining gust attenuation in UAVs. The strategy is based on the combined use of: i) an automatic detection system that identifies gust direction and entity and ii) an aeroelastic model stemming from the coupling between a high-order structural model that is able to resolve the motion and the strain and stress distributions of wings with complex internal structures and a Vortex Lattice Method (VLM) model that accounts for the aerodynamics of the wing-tail system. The gust alleviation strategy employs the information from the detection system and the aeroelastic model to determine the modifications of the wing and the tail surfaces aimed at contrasting wind effects, reducing induced loads and flight path errors. Numerical results are presented to assess the capability of the framework.
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缓解阵风的变形技术:无人机应用
摘要大气湍流在气动载荷和振动方面对飞机任务有显著影响。这些影响对MALE-HALE无人机特别有意义,因为它们的高宽高比和低速度,有时与阵风本身相当。为了达到有效缓解阵风的目标,已经进行了许多研究。一个可行的解决方案是变形技术的应用。然而,变形飞机的设计是一个强大的多学科的努力,涉及不同的专业知识,从结构到空气动力学和飞行控制。在本研究中,提出了一种多学科的翼尾变形策略来实现无人机的阵风衰减。该策略基于以下两种方法的结合使用:1)识别风方向和实体的自动检测系统;2)能够解析具有复杂内部结构的机翼的运动、应变和应力分布的高阶结构模型与解释翼尾系统空气动力学的涡点阵法(VLM)模型之间耦合产生的气动弹性模型。阵风缓解策略利用来自探测系统和气动弹性模型的信息来确定机翼和尾部表面的修改,旨在对比风的影响,减少诱导载荷和飞行路径误差。给出了数值结果来评估该框架的性能。
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