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Development and Flight Testing of a Turbulence Mitigation System for Micro Air Vehicles

机译:微型飞机湍流缓解系统的开发和飞行测试

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There are significant challenges associated with the flight control of fixed-wing micro air vehicles (MAVs) operating in complex environments. The scale of MAVs makes them particularly sensitive to atmospheric disturbances thus limiting their ability to sustain controlled flight. Bio-inspired, phase-advanced sensors have been identified as promising sensory solutions for complementing current inertial-only attitude sensors. This paper describes the development and flight testing of a bio-inspired, phase-advanced sensor and associated control system that mitigates the impact of turbulence on MAVs. Multihole pressure probes, inspired by the sensory function of bird feathers, are used to measure the flow pitch angle and velocity magnitude ahead of the MAV's wing. The sensors provide information on the disturbing phenomena before it causes an inertial response in the aircraft. The sensor output is input to a simple feed-forward control architecture, which enables the MAV to generate a mitigating response to the turbulence. The results from wind-tunnel and outdoor testing in high levels of turbulence are presented. The disturbance rejection performance of the phase-advanced sensory system is compared against that of a conventional inertial-based control system. The developed sensory system shows significant improvement in terms of disturbance rejection performance compared to that of standard inertial-only control system. It is concluded that a phase-advanced sensory systems can complement conventional nertial-based sensors to improve the attitude-tracking performance of MAVs.
机译:在复杂环境中运行的固定翼微型飞行器(MAV)的飞行控制存在重大挑战。 MAV的规模使它们对大气干扰特别敏感,因此限制了它们维持受控飞行的能力。生物启发的,相位先进的传感器已被认为是有前途的感官解决方案,可以补充目前仅惯性的姿态传感器。本文介绍了生物启发,相位先进的传感器及其相关控制系统的开发和飞行测试,该传感器可减轻湍流对MAV的影响。受鸟类羽毛的感官功能启发,多孔压力探头用于测量MAV机翼前方的水流倾角和速度大小。传感器会在扰动现象引起飞机惯性响应之前提供有关扰动现象的信息。传感器输出输入到简单的前馈控制体系结构,该体系结构使MAV可以生成对湍流的缓解响应。给出了在高湍流条件下风洞和户外测试的结果。将相先进的传感系统的干扰抑制性能与常规的基于惯性的控制系统的相比较。与标准的仅惯性控制系统相比,已开发的传感系统在抗扰性方面表现出了显着的提高。结论是,先进的传感系统可以补充传统的基于神经的传感器,从而改善MAV的姿态跟踪性能。

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  • 来源
    《Journal of Field Robotics》 |2016年第5期|639-660|共22页
  • 作者单位

    RMIT University, GPO Box 2476, Melbourne, Victoria 3001;

    RMIT University, GPO Box 2476, Melbourne, Victoria 3001;

    RMIT University, GPO Box 2476, Melbourne, Victoria 3001;

    RMIT University, GPO Box 2476, Melbourne, Victoria 3001;

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