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Effects of modeling errors on trajectory predictions in air traffic control automation

机译:建模误差对空中交通管制自动化中轨迹预测的影响

摘要

Air traffic control automation synthesizes aircraft trajectories for the generation of advisories. Trajectory computation employs models of aircraft performances and weather conditions. In contrast, actual trajectories are flown in real aircraft under actual conditions. Since synthetic trajectories are used in landing scheduling and conflict probing, it is very important to understand the differences between computed trajectories and actual trajectories. This paper examines the effects of aircraft modeling errors on the accuracy of trajectory predictions in air traffic control automation. Three-dimensional point-mass aircraft equations of motion are assumed to be able to generate actual aircraft flight paths. Modeling errors are described as uncertain parameters or uncertain input functions. Pilot or autopilot feedback actions are expressed as equality constraints to satisfy control objectives. A typical trajectory is defined by a series of flight segments with different control objectives for each flight segment and conditions that define segment transitions. A constrained linearization approach is used to analyze trajectory differences caused by various modeling errors by developing a linear time varying system that describes the trajectory errors, with expressions to transfer the trajectory errors across moving segment transitions. A numerical example is presented for a complete commercial aircraft descent trajectory consisting of several flight segments.
机译:空中交通管制自动化综合飞机轨迹以生成建议。轨迹计算采用飞机性能和天气状况的模型。相反,实际轨迹是在实际条件下在真实飞机中飞行的。由于合成轨迹用于着陆调度和冲突探测,因此了解计算轨迹与实际轨迹之间的差异非常重要。本文研究了飞机建模误差对空中交通管制自动化中轨迹预测准确性的影响。假定三维点质量飞机运动方程能够生成实际的飞机飞行路径。建模误差被描述为不确定的参数或不确定的输入函数。飞行员或自动飞行员的反馈动作表示为满足控制目标的相等约束。典型轨迹由一系列飞行段定义,每个飞行段具有不同的控制目标,并定义了段过渡的条件。约束线性化方法用于通过开发描述轨迹误差的线性时变系统来分析各种建模误差引起的轨迹差异,该系统描述了轨迹误差,并具有表达式来在移动段过渡之间传递轨迹误差。给出了一个完整的商用飞机下降轨迹的数值示例,该轨迹由几个飞行段组成。

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