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Investigation of a robust tendon-sheath mechanism for flexible membrane wing application in mini-UAV

机译:微型UAV中柔性膜翼的稳健腱鞘机制研究

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摘要

Two inherent issues manifest themselves in flying mini-unmanned aerial vehicles (mini-UAV) in the dense area at tropical climate regions, namely disturbances from gusty winds and limited space for deployment tasks. Flexible membrane wing (FMW) UAVs are seen to be potentials to mitigate these problems. FMWs are adaptable to gusty airflow as the wings are able to flex according to the gust load to reduce the effective angle-of-attack, thus, reducing the aerodynamic loads on the wing. On the other hand, the flexible structure is allowing the UAV to fold in a compact package, and later on, the mini-UAV can be deployed instantly from the storage tube, e.g. through a catapult mechanism. This paper discusses the development of an FMW UAV actuated by a tendon-sheath mechanism (TSM). This approach allows the wing to morph to generate a rolling moment, while still allowing the wing to fold. Dynamic characteristics of the mechanism that exhibits the strong nonlinear phenomenon of friction on TSM are modeled and compensated for. A feed-forward controller was implemented based on the identified nonlinear behavior to control the warping position of the wing. The proposed strategy is validated experimentally in a wind tunnel facility by creating a gusty environment that is imitating a realistic gusty condition based upon the results of computational fluid dynamics (CFD) simulation. The results demonstrate a stable and robust wing-warping actuation, even in gusty conditions. Accurate wing-warping can be achieved via the TSM, while also allowing the wings to fold.
机译:在热带气候区的稠密地区飞行微型无人机(mini-UAV)时,会表现出两个固有的问题,即阵风和有限的部署任务。柔性膜翼(FMW)无人机被认为可以缓解这些问题。 FMW适用于阵风气流,因为机翼能够根据阵风载荷弯曲以减小有效攻角,从而降低机翼上的空气动力学载荷。另一方面,柔性结构允许无人机折叠成紧凑的包装,随后,微型无人机可以立即从存储管中展开,例如通过弹射器机制。本文讨论了由腱鞘机制(TSM)驱动的FMW无人机的开发。这种方法允许机翼变形以产生侧倾力矩,同时仍允许机翼折叠。对在TSM上表现出强烈的非线性摩擦现象的机制的动力学特性进行了建模和补偿。基于所识别的非线性行为实施前馈控制器,以控制机翼的翘曲位置。在风洞设施中,通过基于计算流体动力学(CFD)模拟的结果创建模仿模拟现实阵风条件的阵风环境,对所提出的策略进行了实验验证。结果表明,即使在有风的条件下,机翼翘曲翘曲机构也稳定稳定。通过TSM可以实现精确的机翼翘曲,同时还可以使机翼折叠。

著录项

  • 来源
    《Mechanical systems and signal processing》 |2017年第2期|252-266|共15页
  • 作者单位

    School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, North Spine (N3), Singapore 639798, Singapore;

    School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, North Spine (N3), Singapore 639798, Singapore;

    Dept. of Mechanical and Manufacturing Engineering, University of Calgary, 2500 University Drive N.W., Calgary, Canada T2N 1N4;

    School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, North Spine (N3), Singapore 639798, Singapore;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Drone; UAV; CFD; Gust; Flexible membrane wing; Control and identification; Tendon-sheath; Wing-warping; Bouc-Wen;

    机译:无人机无人机差价合约阵风;柔性膜翼;控制和识别;肌腱鞘;机翼翘曲;布茨温;

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