基于诱导风模拟方法的四旋翼飞行器软着陆实验研究

S. R. Nekoo, P. J. Sánchez Cuevas, J. Acosta, G. Heredia, A. Ollero
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引用次数: 1

摘要

本文采用诱导风模拟方法对四旋翼飞行器软着陆问题进行了实验研究。着陆阶段一直是无人机飞行的关键阶段之一。当无人机需要降落在敏感地点时,着陆复杂性急剧增加,例如炼油厂的平台或管道架(用于检查目的),其中有爆炸性物质穿过或环境中存在易燃易爆物质。多旋翼无人机通常是轻型平台,在着陆过程中受到地面气动效应的显著干扰;所以,在地面附近,这些无人机受到地面附近的外部干扰。在这种情况下,气流到达地面后会被反射,对旋翼的性能影响很大。本文的目的是建立由螺旋桨引起的诱导风速模型,以观察和考虑着陆过程中的地面效应。靠近地面的总推力的减小提供了平稳着陆和避免碰撞。复杂的风建模公式和商业化自动驾驶仪的局限性使其实现成为一项具有挑战性的任务。在此,我们提出了如何将所提出的软着陆算法纳入现有的UA V自动驾驶仪中。实验结果表明,该方法成功地模拟了导致飞机软着陆的风场模型。
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Experimental Investigation of Soft-Landing of Quadrotors via Induced Wind Modeling Approach
This paper presents an experimental study of the soft-landing problem in quadrotors using the induced wind modeling approach. The landing phase has been typically one of the critical phases in drone flight. Landing complexity drastically increases when the drone needs to land on sensitive sites, such as platforms or rack of pipes in refineries (for inspection purposes), in which explosive material is running through or there exist flammable/explosive material in the environment. Multirotor unmanned aerial vehicles (UAV s) are usually lightweight platforms and they are significantly disturbed by the aerodynamic ground effect while landing; so, near the ground, those drones are subjected to an external disturbance in proximity to the ground. In this situation, the airflow can be reflected after reaching the ground, disturbing the performance of the rotors significantly. This paper aims to model the induced wind velocity, caused by the propellers to see and consider the ground effect during the landing. The reduction of the total thrust near the ground provides a smooth landing and avoids bumping. The complex wind modeling formulation and limitation of the commercialized autopilots make the implementation a challenging task. Herein we propose how to incorporate the proposed soft-landing algorithm within an existing UA V autopilot. Experimental results show that the proposed approach successfully replicates the wind modeling which leads to a soft-landing.
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