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Design and Test of Plasma Control Surface on Unmanned Aerial Vehicle

机译:无人机等离子体控制面的设计与测试

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A flying wing layout is an aircraft layout with no tail only huge wings. It has the advantages of lightweight, low flight resistance and good stealth, but it also has shortcomings such as poor maneuverability. The use of the active flow control technology to replace or enhance the control surfaces, therefore improve the lateral maneuverability of flying wings has attracted the interest of various research teams. The plasma flow control technology can change flow near the actuator to achieve the effect of controlling the local pressure of wing, thereby completing the lateral manipulation of the unmanned aerial vehicle (UAV). Many teams have also carried out relevant experiments, which laid the theoretical foundation for this paper. This paper mainly designs a sensor board system of flying wing UAV. which is used to collect the local pressure on the wing of UAV and control the switch of actuator. An experiment was carried out on the ground. First, this board can collect and monitor the pressure data at a certain point. Second, the circuit system can also react to specific situations (such as local pressure values) and automatically control the actuator's switches. Third, the plasma actuator can also be actively controlled by remote control. This experiment lays the theory and practice foundation for the UAV flight experiments in the future.
机译:飞翼布局是没有尾巴的飞机布局,只有巨大的机翼。它具有重量轻,飞行阻力低和隐身性好的优点,但是也具有诸如可操纵性差的缺点。主动流动控制技术的使用,以取代或增强控制表面,因此提高飞行翼的横向机动性引起了各个研究团队的兴趣。等离子流控制技术可以改变致动器附近的流量,从而达到控制机翼局部压力的效果,从而完成无人机的横向操纵。许多团队也进行了相关实验,为本文奠定了理论基础。本文主要设计了飞行翼无人机的传感器板系统。用于收集无人机机翼上的局部压力并控制执行器的开关。在地面上进行了实验。首先,该板可以在特定点收集和监视压力数据。其次,电路系统还可以对特定情况(例如局部压力值)做出反应,并自动控制执行器的开关。第三,等离子体致动器还可以通过遥控器主动控制。该实验为未来的无人机飞行实验奠定了理论和实践基础。

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