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Design, Characterization, and Testing of Macro-Fiber Composite Actuators for Integration on a Fixed-Wing UAV

机译:用于固定翼无人机上集成的宏纤维复合执行器的设计,表征和测试

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Smart materials offer several potential advantages for UAV flight control applications compared to traditional servo actuators. One important benefit is that smart materials are lightweight and can be embedded directly into the structure of a wing or control surface. Therefore, they can reduce the overall weight of the vehicle and eliminate the need for mechanical appendages that may compromise the form factor of the wing, benefits that become more significant as the size of the vehicle decreases. In addition, smart materials can be used to realize continuous camber change of aerodynamic surfaces. Such designs offer improved aerodynamic efficiency compared to the discontinuous deflections of traditional hinged control surfaces driven by servo actuators. In the research discussed in this paper, macro-fiber composite (MFC) aileron actuators are designed for implementation on a medium-scale, fixed-wing UAV in order to achieve roll control. Macro-fiber composites, which consist of piezoceramic fibers and electrodes embedded in an epoxy matrix, are an attractive choice for UAV actuation because they are manufactured as lightweight, thin sheets and, when implemented as bending actuators, can provide both large structural deflections and high bandwidth. In this study, several MFC aileron actuator designs were evaluated through a combination of theoretical and experimental analysis. The current design consists of glass fiber composite ailerons with two unimorph MFC actuators embedded in each aileron to produce upward deflection. Wind tunnel test results are presented to assess the changes in lift and drag coefficients for different levels of MFC aileron actuation. Preparations for open-loop flight testing using a Skywalker UAV with MFC ailerons are also discussed. In addition, the development of a closed-loop, autonomous flight control system for the Skywalker is overviewed in preparation for conducting simulations and flight testing of an autonomous Skywalker with MFC aileron actuators.
机译:与传统的伺服执行器相比,智能材料为无人机飞行控制应用提供了多个潜在优势。一个重要的好处是,智能材料重量轻,可以直接嵌入机翼或控制表面的结构中。因此,它们可以减轻车辆的整体重量,并且不需要可能会损害机翼形状因素的机械附件,其好处随着车辆尺寸的减小而变得越来越重要。另外,可以使用智能材料实现空气动力学表面的连续弯度变化。与传统的由伺服执行器驱动的铰接控制面的不连续偏转相比,这种设计提供了更高的空气动力学效率。在本文讨论的研究中,为了实现侧倾控制,设计了大纤维复合材料(MFC)副翼执行器用于中型固定翼无人机。由压电陶瓷纤维和嵌入环氧树脂基体中的电极组成的大纤维复合材料是无人机致动的一个有吸引力的选择,因为它们被制成轻质薄板,并且当用作弯曲致动器时,既可以提供大的结构挠度又可以提供高的挠度。带宽。在这项研究中,通过理论和实验分析相结合,对几种MFC副翼执行器设计进行了评估。当前的设计包括玻璃纤维复合材料副翼,每个副翼中嵌有两个Unimorph MFC执行器,以产生向上偏转。提出了风洞测试结果,以评估不同水平的MFC副翼驱动时升力和阻力系数的变化。还讨论了使用带有MFC副翼的Skywalker UAV进行开环飞行测试的准备工作。此外,概述了天行者的闭环自主飞行控制系统的开发,以准备对带有MFC副翼执行器的自主天行者进行仿真和飞行测试。

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