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Performance Evaluation of Conflict-Free Trajectory Taxiing in Airport Ramp Area Using Fast-Time Simulations

机译:基于快速仿真的机场匝道无冲突滑行滑行性能评估

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The German Aerospace Center (DLR) and the National Aeronautics and Space Administration (NASA) have been collaborating to conduct joint research addressing future surface traffic management challenges. The surface management tool from DLR, called Taxi Routing for Aircraft: Creation and Controlling (TRACC), was adapted to be integrated in NASA's fast-time simulation environment called Surface Operations Simulator and Scheduler (SOSS). The research described in this paper 1) applied TRACC to trajectory-based ramp traffic management, where TRACC generates conflict-free aircraft trajectories in a congested ramp area, 2) investigated the feasibility of the concept through the integrated TRACC-SOSS fast-time simulation, and 3) evaluated the performance of the integrated system. For this activity, TRACC was adapted for ramp operations at Charlotte Douglas International Airport, called TRACC_PB (TRACC for pushback optimization). TRACC _ PB provides four-dimensional taxi trajectories with a command speed profile for each aircraft following standard taxi routes within the ramp area. In this study, departures are given the Target Movement Area entry Times (TMATs) provided by the baseline surface metering scheduler based on NASA's Spot and Runway Departure Advisor (SARDA). TRACC_PB also calculates optimal pushback times for departures, as well as the times when arrivals shall enter the ramp, the Target Movement area Exit Times (TMETs). The initial results showed that the TRACC_PB successfully generated conflict-free trajectories for the ramp area taxi operations and improved taxiing efficiency compared to the baseline results. TRACC_PB aimed to provide conflict-free taxi routes avoiding any stops while taxiing. This resulted in longer gate hold times for departures and postponed throughput values compared to the baseline simulation without trajectory optimization. Having conflict-free routes without stoppage also created shorter taxi times but required renegotiation of the given TMATs. TRACC_PB also achieved reductions in both fuel consumption and engine emissions (17% for departures and 10% for arrivals), which correlate with the ramp taxi time reduction.
机译:德国航空航天中心(DLR)和美国国家航空航天局(NASA)一直在合作进行联合研究,以应对未来的地面交通管理挑战。 DLR的地面管理工具称为飞机的滑行道:创建和控制(TRACC),适用于集成在NASA的快速模拟环境中,称为Surface Operations Simulator and Scheduler(SOSS)。本文所述的研究1)将TRACC应用于基于轨迹的匝道交通管理,其中TRACC在拥挤的匝道区域生成无冲突的飞机轨迹,2)通过集成的TRACC-SOSS快速仿真研究了该概念的可行性,以及3)评估集成系统的性能。对于此活动,TRACC被改编为夏洛特道格拉斯国际机场的坡道运营,称为TRACC_PB(用于回推优化的TRACC)。 TRACC _ PB为在斜坡区域内遵循标准滑行路线的每架飞机提供具有命令速度曲线的四维滑行轨迹。在本研究中,根据美国国家航空航天局(NASA)的现场和跑道离场顾问(SARDA),由基线地面计量计划程序提供的目标移动区域进入时间(TMAT)为出发时间。 TRACC_PB还计算出出发的最佳推回时间,以及到达目的地进入坡道的时间,即目标移动区域出站时间(TMET)。初步结果表明,与基线结果相比,TRACC_PB成功生成了坡道滑行操作的无冲突轨迹,并提高了滑行效率。 TRACC_PB旨在提供无冲突的出租车路线,避免在滑行时停下来。与没有轨迹优化的基线模拟相比,这导致更长的登机门保持时间和延迟的吞吐量值。拥有无中断的无冲突路线也可以缩短滑行时间,但需要重新协商给定的TMAT。 TRACC_PB还减少了油耗和发动机排放(出发时减少了17%,抵港时减少了10%),这与减少滑行滑行时间有关。

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