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Dynamic Soaring UAV Gliders

机译:动态高飞无人机滑翔机

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摘要

Dynamic soaring in the atmospheric boundary layer of a vertical variation of horizontal winds over arbitrary terrain offers small unmanned aerial vehicle gliders the ability to greatly expand mission operations while also extending endurance. Wandering albatrosses and other oceanic birds have provided the original evidence of the ability to exploit vertical wind gradients through their long distance circumnavigation flights using periodic maneuvers with cycles of upwind, crosswind, and downwind phases orchestrated to extract sufficient energy from the environment to allow perpetual flight. Dynamic soaring analysis presents additional challenges to the established theories of aerodynamic flight dynamics, due to the presence of wind vector fields that can vary their magnitude and direction in spatial and temporal dimensions. Preserving a consistency with typical flight analysis including static soaring, an air-relative wind-aligned / wind-fixed reference frame is proposed for dynamic soaring analysis, in particular for the computation of kinetic energy. Novel contributions of this present work include a logical progression of seven heuristic assumptions leading to a singular conclusion regarding the appropriate usage of airspeed for kinetic energy computation. Also, a concept of fundamental equivalence between spatial and temporal gradients experienced by a flight vehicle is presented, including the mechanism by which both generate the same accelerating reference frame and apparent dynamic soaring thrust. A novel reverse kinematics simulation is introduced, built on a parametric trajectory definition and analysis via Frenet-Serret equations. A series of dynamic soaring steady-state scenarios are presented and used to amplify the spatial and temporal gradient equivalence concept. The familiar glider sink polar curve is used in two novel ways: first, the curve shift procedures typically employed to account for changes in glider weight for uniform wind flight are proposed as also applicable to account for the apparent weight change during dynamic frame acceleration; second, the sink polar curve is transformed into a sink polar surface representing a family of curves with the additional dimension of weight inflation ratio. These novel insights and observations are intended to provide a solid foundation for present and future dynamic soaring analysis across a spectrum of interdisciplinary research.
机译:在任意地形上水平风垂直变化的大气边界层中的动态飙升为小型无人驾驶飞机滑翔机提供了极大地扩展飞行任务的能力,同时还增加了续航能力。流浪信天翁和其他海洋鸟类提供了原始证据,表明他们可以利用周期性的逆风,逆风和逆风阶段循环从远距离环游飞行中利用垂直风向,以从环境中提取足够的能量以允许永久飞行。动态飙升分析对已建立的空气动力学飞行动力学理论提出了额外的挑战,因为存在风矢量场,风矢量场可以在空间和时间维度上改变其大小和方向。为了保持与包括静态飞翔的典型飞行分析的一致性,提出了一种相对于空气的风准/风固定参考系,用于动态飞翔分析,尤其是用于动能的计算。这项工作的新颖贡献包括七个启发式假设的逻辑进展,这得出了关于适当使用空速进行动能计算的单个结论。此外,提出了飞行器所经历的空间和时间梯度之间的基本等价的概念,包括一种机制,通过该机制两者都可以生成相同的加速参考系和明显的动态高推力。介绍了一种新颖的反向运动学仿真,该仿真基于参数化轨迹定义并通过Frenet-Serret方程进行分析。提出了一系列动态高飞稳态场景,并将其用于放大时空梯度等效概念。熟悉的滑翔机下沉极曲线以两种新颖的方式使用:首先,提出了通常用于说明匀速飞行时滑翔机重量变化的曲线移动程序,也适用于解决动态框架加速过程中表观重量的变化。其次,将汇极曲线转换为代表一系列曲线的汇极表面,并增加了重量膨胀率。这些新颖的见解和观察旨在为跨学科研究的当前和未来动态飞涨分析提供坚实的基础。

著录项

  • 作者

    Koessler, Jeffrey H.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Aerospace engineering.;Engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 112 p.
  • 总页数 112
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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