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Optimal collision avoidance trajectories for unmanned/remotely piloted aircraft.

机译:无人/遥控飞机的最佳避碰轨迹。

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摘要

The post-911 environment has punctuated the force-multiplying capabilities that Remotely Piloted Aircraft (RPA) provides combatant commanders at all echelons on the battlefield. Not only have unmanned aircraft systems made near-revolutionary impacts on the battlefield, their utility and proliferation in law enforcement, homeland security, humanitarian operations, and commercial applications have likewise increased at a rapid rate. As such, under the Federal Aviation Administration (FAA) Modernization and Reform Act of 2012, the United States Congress tasked the FAA to "provide for the safe integration of civil unmanned aircraft systems into the national airspace system (NAS) as soon as practicable, but not later than September 30, 2015." However, a necessary entrance criterion to operate RPAs in the NAS is the ability to Sense and Avoid (SAA) both cooperative and non-cooperative air trac to attain a target level of safety as a traditional manned aircraft platform. The goal of this research effort is twofold: First, develop techniques for calculating optimal avoidance trajectories, and second, develop techniques for estimating an intruder aircraft's trajectory in a stochastic environment. This dissertation describes the optimal control problem associated with SAA and uses a direct orthogonal collocation method to solve this problem and then analyzes these results for different collision avoidance scenarios.
机译:911后的环境突显了力量倍增功能,远程飞行员飞机(RPA)为战场上的所有梯队提供了战斗指挥官。无人驾驶飞机系统不仅对战场产生了近乎革命性的影响,其在执法,国土安全,人道主义行动和商业应用中的效用和扩散也迅速增加。因此,根据2012年美国联邦航空管理局(FAA)的《现代化和改革法案》,美国国会要求FAA“在切实可行的范围内,尽快将民用无人驾驶飞机系统安全地整合到国家空域系统(NAS)中,但不迟于2015年9月30日。”但是,在NAS中运行RPA的必要入口标准是能够感知和避免(SAA)合作和非合作空中追踪,以达到作为传统载人飞机平台的目标安全水平。这项研究工作的目标是双重的:首先,开发用于计算最佳避让轨迹的技术,其次,开发用于估计随机环境中入侵飞机的轨迹的技术。本文描述了与SAA相关的最优控制问题,并使用直接正交配置方法解决了该问题,然后针对不同的避撞场景分析了这些结果。

著录项

  • 作者

    Smith, Nathan E.;

  • 作者单位

    Air Force Institute of Technology.;

  • 授予单位 Air Force Institute of Technology.;
  • 学科 Aerospace engineering.;Computer engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 263 p.
  • 总页数 263
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:27

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