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Speed and path control for conflict-free flight in high air traffic demand in terminal airspace.

机译:终端空域对空中交通需求高时的无冲突飞行速度和路径控制。

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摘要

To accommodate the growing air traffic demand, flights will need to be planned and navigated with a much higher level of precision than today's aircraft flight path. The Next Generation Air Transportation System (NextGen) stands to benefit significantly in safety and efficiency from such movement of aircraft along precisely defined paths. Air Traffic Operations (ATO) relying on such precision--the Precision Air Traffic Operations or PATO--are the foundation of high throughput capacity envisioned for the future airports. In PATO, the preferred method is to manage the air traffic by assigning a speed profile to each aircraft in a given fleet in a given airspace (in practice known as (speed control). In this research, an algorithm has been developed, set in the context of a Hybrid Control System (HCS) model, that determines whether a speed control solution exists for a given fleet of aircraft in a given airspace and if so, computes this solution as a collective speed profile that assures separation if executed without deviation. Uncertainties such as weather are not considered but the algorithm can be modified to include uncertainties. The algorithm first computes all feasible sequences (i.e., all sequences that allow the given fleet of aircraft to reach destinations without violating the FAA's separation requirement) by looking at all pairs of aircraft. Then, the most likely sequence is determined and the speed control solution is constructed by a backward trajectory generation, starting with the aircraft last out and proceeds to the first out. This computation can be done for different sequences in parallel which helps to reduce the computation time. If such a solution does not exist, then the algorithm calculates a minimal path modification (known as path control) that will allow separation-compliance speed control. We will also prove that the algorithm will modify the path without creating a new separation violation. The new path will be generated by adding new waypoints in the airspace. As a byproduct, instead of minimal path modification, one can use the aircraft arrival time schedule to generate the sequence in which the aircraft reach their destinations.
机译:为了适应不断增长的空中交通需求,将需要以比当今飞机飞行路线更高的精度来计划和导航飞行。飞机沿着精确定义的路径进行的这种移动将使下一代航空运输系统(NextGen)显着受益于安全性和效率。依靠这种精确度的空中交通运营(ATO)-精确空中交通运营(PATO)-是未来机场可实现的高吞吐能力的基础。在PATO中,首选方法是通过为给定空域中给定机队中的每架飞机分配速度分布图来管理空中交通(在实践中称为(速度控制)。在本研究中,已经开发了一种算法,混合控制系统(HCS)模型的上下文,它确定给定空域中给定飞机机队是否存在速度控制解决方案,如果存在,则将该解决方案计算为集体速度曲线,以确保在无偏差的情况下执行分离。不考虑天气等不确定性,但是可以对算法进行修改,使其包含不确定性,该算法首先通过查看所有可行序列(即,允许给定飞机机队到达目的地而不会违反FAA隔离要求的所有序列)然后,确定最可能的顺序,并通过向后的轨迹生成来构建速度控制解决方案,从飞机开始ft最先出,然后进行到先出。可以针对不同的序列并行执行此计算,这有助于减少计算时间。如果不存在这样的解决方案,则该算法将计算最小路径修改(称为路径控制),以允许进行分离顺应性速度控制。我们还将证明该算法将修改路径而不会产生新的分离冲突。新路径将通过在空域中添加新的航路点来生成。作为副产品,代替最小的路径修改,可以使用飞机到达时间表来生成飞机到达目的地的顺序。

著录项

  • 作者

    Rezaei, Ali.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Mechanical.;Transportation.;Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 111 p.
  • 总页数 111
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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