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Diagnostic throughput factor analysis for en-route airspace and optimal aircraft trajectory generation based on capacity prediction and controller workload.

机译:基于容量预测和控制器工作量的航路空域诊断吞吐量因子分析和最佳飞机轨迹生成。

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摘要

Today's National Airspace System (NAS) is approaching its limit to efficiently cope with the increasing air traffic demand. Next Generation Air Transportation System (NextGen) with its ambitious goals aims to make the air travel more predictable with fewer delays, less time sitting on the ground and holding in the air to improve the performance of the NAS. However, currently the performance of the NAS is mostly measured using delay-based metrics which do not capture a whole range of important factors that determine the quality and level of utilization of the NAS. The factors affecting the performance of the NAS are themselves not well defined to begin with. To address these issues, motivated by the use of throughput-based metrics in many areas such as ground transportation, wireless communication and manufacturing, this thesis identifies the different factors which majorly affect the performance of the NAS as demand (split into flight cancellation and flight rerouting), safe separation (split into conflict and metering) and weather (studied as convective weather) through careful comparison with other applications and performing empirical sensitivity analysis. Additionally, the effects of different factors on the NAS's performance are quantitatively studied using real traffic data with the Future ATM Concepts Evaluation Tool (FACET) for various sectors and centers of the NAS on different days. In this thesis we propose a diagnostic tool which can analyze the factors that have greater responsibility for regions of poor and better performances of the NAS.;Based on the throughput factor analysis for en-route airspace, it was found that weather and controller workload are the major factors that decrease the efficiency of the airspace. Also, since resources such as air traffic controllers, infrastructure and airspace are limited, it is becoming increasingly important to use the available resources efficiently. To alleviate the impact of the weather and controller workload while optimally utilizing limited resources, various aircraft rerouting strategies for Air Traffic Management (ATM) have been proposed. However, the number of rerouting tools available to address these issues for the center-level and the National Airspace System (NAS) are relatively less compared with the tools for the sector-level and terminal airspace. Additionally, previous works consider the airspace containing the weather as no-fly zones instead of reduced-traffic zones and do not explicitly consider controller workload when generating aircraft trajectories to avoid the weather-affected airspace, thereby reducing the overall performance of the airspace. In this thesis, a new rerouting algorithm for the center-level airspace is proposed to address these problems by introducing a feedback loop connecting a tactical rerouting algorithm with a strategic rerouting algorithm using dynamic programming and a modified A* algorithm respectively. This helps reduce the computational cost significantly while safely handling a large number of aircraft.;In summary, this thesis suggests the ways in which the NAS's performance can be further improved, thereby supporting various concepts envisioned by the Next Generation Air Transportation System (NextGen) and providing vital information which can be used for suitable economic and environmental advantages.
机译:当今的国家空域系统(NAS)即将达到极限,以有效应对不断增长的空中交通需求。具有雄心勃勃目标的下一代航空运输系统(NextGen)旨在使航空旅行更可预测,延迟更少,坐在地面上并停留在空中的时间更少,从而提高NAS的性能。但是,目前,NAS的性能主要是使用基于延迟的指标来衡量的,这些指标无法捕获决定NAS的质量和利用率水平的所有重要因素。首先,没有很好地定义影响NAS性能的因素。为了解决这些问题,受在地面运输,无线通信和制造等许多领域使用基于吞吐量的度量标准的激励,本论文确定了主要影响NAS性能的不同因素(按需求(分为取消飞行和取消飞行)重路由),安全隔离(分为冲突和计量)和天气(称为对流天气),方法是与其他应用程序进行仔细比较并进行经验敏感性分析。此外,还使用未来ATM概念评估工具(FACET)通过真实流量数据在不同的日子对NAS的各个部门和中心进行了定量分析,研究了不同因素对NAS性能的影响。在本文中,我们提出了一种诊断工具,该工具可以分析造成NAS性能较差和性能更好的区域的原因。;基于航路空域的吞吐量因子分析,发现天气和控制器的工作量是降低空域效率的主要因素。而且,由于诸如空中交通管制员,基础设施和空域之类的资源受到限制,有效利用可用资源变得越来越重要。为了减轻天气和控制器工作负荷的影响,同时最佳地利用有限的资源,已经提出了用于空中交通管理(ATM)的各种飞机改道策略。但是,与用于部门级和终端空域的工具相比,用于中心级和国家空域系统(NAS)的可用于解决这些问题的重新路由工具的数量相对较少。此外,先前的工作将包含天气的空域视为禁飞区,而不是交通减少区,并且在生成飞机轨迹以避免受天气影响的空域时没有明确考虑管制员的工作量,从而降低了空域的整体性能。本文提出了一种新的针对中心空域的重路由算法,通过引入一种将战术重路由算法与策略重路由算法分别采用动态规划和改进的A *算法相连接的反馈回路来解决这些问题。这有助于在安全处理大量飞机的同时显着降低计算成本。总之,本文提出了进一步改善NAS性能的方法,从而支持下一代航空运输系统(NextGen)构想的各种概念。并提供可用于适当的经济和环境优势的重要信息。

著录项

  • 作者

    Shin, Sanghyun.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Aerospace.
  • 学位 M.S.A.A.
  • 年度 2013
  • 页码 102 p.
  • 总页数 102
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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