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Time-based Spacing for 4D Approaches using Speed-Profiles

机译:使用速度曲线的4D方法基于时间的间距

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Two of the major projects in ATM development, SESAR and NextGen, both forecast the use of 4D trajectories as an intermediate phase in the development of full Performance Based Trajectories. Using 4D trajectories, the full positional and time coordinates of the aircraft are known throughout the planned trajectory. During approach, when reduced separation minimums are applied, the accuracy of this profile is most important to ensure a safe approach to the runway. One implementation of 4D approaches is by using Required-Time of Arrival (RTA) to separate aircraft during approach. The latest Flight Management Computers are capable of calculating a flight-path w.r.t. to a RTA. This paper describes the amount of time error that can occur during approaches where an RTA is set at the runway threshold that could still be resolved by increasing or decreasing the speed-profile. The minimum and maximum bounds are referred to as control space. Using simulations, the recoverable time error is calculated. Lateral trajectories from Amsterdam Airport Schiphol, different wind conditions and two different aircraft types were included to investigate different factors influencing the time error, such as aircraft type, speed restrictions and wind. Finally, the paper discusses a new method to control time-based spacing using a closed-loop speed controller.
机译:ASAR开发中的两个主要项目SESAR和NextGen都预测将4D轨迹用作完全基于性能的轨迹的开发的中间阶段。使用4D轨迹,可以在整个计划轨迹中了解飞机的完整位置和时间坐标。在进近过程中,当应用减小的最小间隔时,此轮廓的准确性对于确保安全进近跑道至关重要。 4D进近的一种实现方式是在进近期间使用到达时间要求(RTA)来分离飞机。最新的飞行管理计算机能够计算飞行路径w.r.t.到RTA。本文描述了在将RTA设置为跑道阈值的进近过程中可能发生的时间误差,仍然可以通过增加或减小速度曲线来解决。最小和最大边界称为控制空间。使用模拟来计算可恢复的时间误差。包括阿姆斯特丹史基浦机场的横向轨迹,不同的风况和两种不同的飞机类型,以研究影响时间误差的不同因素,例如飞机类型,速度限制和风力。最后,本文讨论了一种使用闭环速度控制器控制基于时间的间距的新方法。

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