为垂直起降无人机设计安全高效的飞行过渡策略
Modeling, Planning, and Control for Hybrid UAV Transition Maneuvers
- 基于非线性动力学模型设计连续俯仰过渡动作
- 发现恒定高度过渡中的关键障碍并提出突破方案
- 适合无人机控制与自主飞行系统研究者参考
小型无人飞行器已广泛应用于民用与军事侦察及测绘。未来,其将在自主包裹递送中发挥关键作用,但现有多旋翼机型能耗高、续航不足。为降低配送无人机的功耗并保持悬停能力,亚马逊等公司正试验混合式垂直起降(VTOL)平台。尾坐式VTOL结构简单、成本低,硬件与微电子技术进步使其更适合配送任务,但其软件控制仍严重制约行业应用。当前尾坐式无人机缺乏通用、计算高效的控制方法,无法在全飞行域提供强安全与鲁棒性保障;同时缺乏闭环形式的动态可行过渡机动设计方法。本文综述了小型尾坐式无人机的建模与控制方法,并利用非线性动力学模型尝试设计恒定高度下物理可实现的连续俯仰过渡机动。主要成果识别出恒定高度过渡中的潜在障碍,并提出一种新方法以绕过这些障碍。尽管初步结果未能实现可行过渡,本工作仍为未来设计安全、鲁棒且计算高效的过渡机动提供了重要基础。
原文摘要 · Abstract (English)
Small unmanned aerial vehicles (UAVs) have become standard tools in reconnaissance and surveying for both civilian and defense applications. In the future, UAVs will likely play a pivotal role in autonomous package delivery, but current multi-rotor candidates suffer from poor energy efficiency leading to insufficient endurance and range. In order to reduce the power demands of package delivery UAVs while still maintaining necessary hovering capabilities, companies like Amazon are experimenting with hybrid Vertical Take-Off and Landing (VTOL) platforms. Tailsitter VTOLs offer a mechanically simple and cost-effective solution compared to other hybrid VTOL configurations, and while advances in hardware and microelectronics have optimized the tailsitter for package delivery, the software behind its operation has largely remained a critical barrier to industry adoption. Tailsitters currently lack a generic, computationally efficient method of control that can provide strong safety and robustness guarantees over the entire flight domain. Further, tailsitters lack a closed-form method of designing dynamically feasible transition maneuvers between hover and cruise. In this paper, we survey the modeling and control methods currently implemented on small-scale tailsitter UAVs, and attempt to leverage a nonlinear dynamic model to design physically realizable, continuous-pitch transition maneuvers at constant altitude. Primary results from this paper isolate potential barriers to constant-altitude transition, and a novel approach to bypassing these barriers is proposed. While initial results are unsuccessful at providing feasible transition, this work acts as a stepping stone for future efforts to design new transition maneuvers that are safe, robust, and computationally efficient.
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