随机风条件下跑道配置规划的概率决策模型

Leihong Li, J. Clarke, H. C. Chien, Terran Melconian
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引用次数: 12

摘要

当地的气象条件,如风向、云顶高度和能见度等,直接影响机场的安全和效率。安全与效率,通常是矛盾的,与选择特定的跑道配置有关,这是机场塔台管制员工作的一部分。当风速和风向超过FAA操作程序规定的最大允许限制时,管制员必须改变跑道配置。在此配置变更期间,所有到达和离开飞机的状态分别变为空中或地面等待,直到新的飞行路径和新的滑行路径明确为止。这种情况极大地影响了机场的运营效率,以及相关的延误、燃油消耗和排放成本。尽管它很突出,但只有少数研究讨论了配置变化的决策时机。本文提出了一种创新的随机风条件下跑道配置规划决策方法。该决策方法的目标是在给定一系列风预报数据的情况下,实现机场吞吐量最大化和终点区空中延误最小化。利用动态规划和逆向归纳法的优化技术求解概率最优性方程。基于JFK测试用例的仿真结果表明,该方法在不违反操作规程的情况下,减少了跑道系统的平均延误时间,提高了吞吐量。
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A probabilistic decision-making model for runway configuration planning under stochastic wind conditions
Local meteorological conditions such as wind direction, cloud ceiling heights, and visibility directly influence the safety and efficiency of an airport. The safety and efficiency, generally contradictory, are associated with the selection of a particular runway configuration that is a part of job of airport tower controllers. When the wind speed and directions exceed the maximum allowable limit defined by the FAA operational procedures, controllers must change runway configurations. During this configuration change, the status of all arriving and departing aircrafts are turned into airborne or ground holding, respectively, until the new flight paths and the new taxi paths are clarified. This situation greatly influences the airport operational efficiency with its associated cost of delays, fuel burn and emissions. Despite its prominence, only a few studies that discuss the timing of decision-making for the configuration change can be found. In this study, an innovative decision-making approach is proposed for runway configuration planning under stochastic wind conditions. The goal of the decision-making approach is to maximize the airport throughput and minimize the airborne delay in terminal area, given a sequence of wind forecast data. The optimization techniques of dynamic programming and backwards induction are used to solve the probabilistic optimality equation. Based on the simulation results of JFK test case, the proposed approach is shown to reduce the average delay time and improve the throughput of runway systems without violating operational procedures.
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