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A Data-driven Analysis of a Tactical Surface Scheduler

机译:战术表面调度程序的数据驱动分析

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NASA's Airspace Technology Demonstration-2 (ATD-2) integrates arrival, departure, and surface operations to extend integrated traffic sequencing all the way from the gate to the overhead stream and back again for multi-airport, metroplex environments. A key concept of ATD-2 centers on surface scheduling that allows aircraft to taxi, climb, and insert within the overhead stream with minimal interruptions. A core principle is to allow aircraft to absorb delay at the gate prior to engine start in order to reduce overall fuel burn and emissions. To achieve these goals, it is necessary for the scheduler to properly balance the demand at the runway with the available capacity while also predicting accurate takeoff times. This paper provides a data-driven analysis of the runway demand capacity balancing and measures the accuracy of schedules that are generated while running in a live operational environment at the Charlotte Douglas International Airport. We found that using minimum-time wake vortex separation constraints to define runway capacity resulted in scheduling departure operations at a slightly higher rate than the runway was operating and we discovered a surprising relationship between the runway rate and the accuracy of the schedules.
机译:NASA的空域技术演示2(ATD-2)集成了到达,离开和地面操作,以扩展集成的交通顺序,从登机口一直到高架流,再到多机场,大都会环境,再返回。 ATD-2的一个关键概念集中在水面调度上,它可使飞机滑行,爬升和插入架空流中,而造成的干扰最小。一项核心原则是允许飞机在发动机启动之前吸收登机口的延迟,以减少总体燃料燃烧和排放。为了实现这些目标,调度程序必须适当地平衡跑道需求与可用容量,同时还要预测准确的起飞时间。本文提供了对跑道需求容量平衡的数据驱动分析,并测量了在夏洛特道格拉斯国际机场的实时运行环境中运行时生成的时间表的准确性。我们发现,使用最小时间尾流涡流分离约束来定义跑道通行能力,导致以比跑道正在运行的速度稍高的速度安排离场操作,并且我们发现了跑道速度与时间表准确性之间令人惊讶的关系。

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