A Distributed Conflict Detection and Resolution Method for Unmanned Aircraft Systems Operation in Integrated Airspace

K. Shi, Kaiquan Cai, Zhaoxuan Liu, Lanchenhui Yu
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引用次数: 3

Abstract

Recently, with the rapid development of related avionics, Unmanned Aircraft Systems (UAS) have been widely used in various fields. The current segregated operations cannot meet their increasing demand and it is expected that UAS could operate in the integrated airspace with manned aircraft. However, full integration of UAS into civil airspace is confronted with the safety challenge because their Detect and Avoid (DAA) ability is not equivalent with that of manned aircraft. As the number of aircraft grows in the shared airspace, the possibility of flight conflicts will inevitably increase. In order to ensure the safe operation of various types of aircraft, a distributed Conflict Detection and Resolution (CD&R) method for integrated operation is proposed in this paper. First, a dynamic protect zone based on time threshold in the presence of uncertainty is designed to obtain efficient separation criteria. Based on the established protect zone, the Closest Point of Approach (CPA) strategy is employed to detect potential conflicts. Additionally, two conflict risk ranking mechanisms are specifically introduced to guarantee the efficiency of subsequent multi-aircraft conflict resolution. Finally, the mixed integer programming models have been built to minimize the conflict-free trajectory deviation via the Velocity Obstacle (VO) method. Numerical results have shown the superior performance of proposed method in different scenarios.
集成空域中无人机系统分布式冲突检测与解决方法
近年来,随着航空电子技术的飞速发展,无人驾驶飞机系统(UAS)在各个领域得到了广泛的应用。目前的隔离作战已不能满足其日益增长的需求,期望无人机能够与有人驾驶飞机在一体化空域作战。然而,由于无人机的探测与回避(DAA)能力不等同于有人驾驶飞机,无人机全面融入民用空域面临着安全挑战。随着共享空域内飞机数量的增加,发生飞行冲突的可能性也将不可避免地增加。为了保证多机型飞机的安全运行,本文提出了一种分布式集成作战冲突检测与解决方法。首先,在存在不确定性的情况下,设计了基于时间阈值的动态保护区域,以获得有效的分离准则;在建立保护区域的基础上,采用最接近点(CPA)策略检测潜在冲突。此外,还具体引入了两种冲突风险排序机制,以保证后续多机冲突解决的效率。最后,通过速度障碍(Velocity Obstacle, VO)方法建立了无冲突轨迹偏差最小化的混合整数规划模型。数值结果表明,该方法在不同场景下具有较好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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