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Research on the Dynamic CDA track optimization based on the optimal trajectory points selection

机译:基于最优轨迹点选择的动态CDA轨迹优化研究

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The traditional continuous descent approach(CDA) trajectory is optimized only in the vertical direction. Therefore, the operation advantages of CDA have not been fully shown. The selection process of the position points of the optimal track can be divided into the three steps. The one is the terminal area discretizing. The second one is the selection model setting, and optimization algorithm model designed with the objective function value. The third one is waypoints selecting for the descent track and optimization track profiles. The limitation elements include turning angle, descending gradient and total carbon emission. In the simulation, firstly, the optimal track points are selected in the 3D cone waypoints set, according to the restrictions on the turning angle, descending gradient. Secondly, valid dynamic CDA trajectory is constructed, according to the spatial conic relationship between TOD points and the FAF points. Thirdly, the dynamic CDA trajectory is chosen through comparison and analysis of the waypoints restrictions, which has the minimum total CO and CO2 emissions. The simulation results with the typical airport terminal area are shown that the threefold selection method based on the turning angle, range sum and carbon emission can optimize the track profile from three aspects at same time, and the emission reduction of the dynamic CDA trajectory optimizing selected from the 3D grid waypoints set is better than the traditional CDA trajectory optimization.
机译:传统的连续下降法(CDA)轨迹仅在垂直方向上进行了优化。因此,CDA的操作优势尚未得到充分体现。最佳轨迹的位置点的选择过程可以分为三个步骤。一个是终端区域离散化。第二个是选择模型的设置,以及用目标函数值设计的优化算法模型。第三个是为下降轨道和优化轨道配置文件选择的航路点。限制因素包括转角,下降梯度和总碳排放量。在仿真中,首先,根据转弯角度,下降坡度的限制,在3D圆锥航路点集中选择最佳航迹点。其次,根据TOD点与FAF点之间的空间圆锥关系,构造了有效的动态CDA轨迹。第三,通过比较和分析航路点限制来选择动态CDA轨迹,该路线具有最小的CO和CO2总排放量。对典型机场航站楼区域的仿真结果表明,基于转弯角,航程和和碳排放的三重选择方法可以同时从三个方面优化航迹,并选择了动态CDA轨迹优化的排放减少量。 3D网格航路点设置的效果要优于传统的CDA轨迹优化。

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