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Practical implementation of 4D-trajectories in air traffic management: system requirements and time windows monitoring

机译:空中交通管理中4D轨迹的实际实施:系统要求和时间Windows监控

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Purpose - The current air traffic management (ATM) operational approach is changing; "time" is now integrated as an additional fourth dimension on trajectories. This notion will impose on aircraft the compliance of accurate arrival times over designated checkpoints (CPs), called time windows (TWs). This paper aims to clarify the basic requirements and foundations for the practical implementation of this functional framework. Design/methodology/approach - This paper reviews the operational deployment of 4D trajectories, by defining its relationship with other concepts and systems of the future ATM and communications, navigation and surveillance (CNS) context. This allows to establish the main tools that should be considered to ease the application of the 4D-trajectories approach. This paper appraises how 4D trajectories must be managed and planned (negotiation, synchronization, modification and verification processes). Then, based on the evolution of a simulated 4D trajectory, the necessary corrective measures by evaluating the degradation tolerances and conditions are described and introduced. Findings - The proposed TWs model can control the time tolerance within less than 100 s along the passing CPs of a generic trajectory, which is in line with the expected future ATM time-performance requirements. Originality/value - The main contribution of this work is the provision of a holistic vision of the systems and concepts that will be necessary to implement the new 4D-trajectory concept efficiently, thus enhancing performance. It also proposes tolerance windows for trajectory degradation, to understand both when an update is necessary and what are the conditions required for pilots and air traffic controllers to provide this update.
机译:目的 - 目前的空中交通管理(ATM)操作方法正在发生变化; “时间”现在被整合为轨迹的额外第四维度。此概念将施加飞机,符合准确到达时间超过指定的检查点(CPS),称为时间窗口(TWS)。本文旨在澄清该功能框架实际实施的基本要求和基础。设计/方法/方法 - 本文通过将其与未来ATM和通信,导航和监视(CNS)背景的其他概念和系统的关系定义其关系,审查了4D轨迹的操作部署。这允许建立应考虑缓解4D轨迹方法的主要工具。本文评估了4D轨迹必须进行管理和计划(协商,同步,修改和验证过程)。然后,基于模拟4D轨迹的演变,描述并介绍了通过评估劣化公差和条件来进行必要的校正措施。调查结果 - 建议的TWS模型可以沿着通用轨迹的通过CPS控制时间容差,这与预期的未来ATM时间性能要求一致。原创性/值 - 这项工作的主要贡献是提供有效实施新的4D轨迹概念所必需的系统和概念的整体愿景,从而提高性能。它还提出了用于轨迹劣化的宽容窗口,以了解更新时,飞行员和空中流量控制器提供此更新所需的条件是什么。

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