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A Method of Rescue Flight Path Plan Correction Based on the Fusion of Predicted Low-altitude Wind Data

机译:一种基于预测低空风数据融合的营救飞行路线计划修正方法

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摘要

This study proposes a low-altitude wind prediction model for correcting the flight path plans of low-altitude aircraft. To solve large errors in numerical weather prediction (NWP) data and the inapplicability of high-altitude meteorological data to low altitude conditions, the model fuses the low-altitude lattice prediction data and the observation data of a specified ground international exchange station through the unscented Kalman filter (UKF)-based NWP interpretation technology to acquire the predicted low-altitude wind data. Subsequently, the model corrects the arrival times at the route points by combining the performance parameters of the aircraft according to the principle of velocity vector composition. Simulation experiment shows that the RMSEs of wind speed and direction acquired with the UKF prediction method are reduced by 12.88% and 17.50%, respectively, compared with the values obtained with the traditional Kalman filter prediction method. The proposed prediction model thus improves the accuracy of flight path planning in terms of time and space.
机译:这项研究提出了一种低空风力预测模型,用于校正低空飞机的飞行路径计划。为了解决数值天气预报(NWP)数据中的大错误以及高海拔气象数据不适用于低海拔条件的问题,该模型通过低气味融合了低海拔格网预测数据和指定地面国际交换站的观测数据基于卡尔曼滤波器(UKF)的NWP解释技术,以获取预测的低空风数据。随后,该模型根据速度矢量合成原理,通过组合飞机的性能参数来校正到达航点的时间。仿真实验表明,与传统的卡尔曼滤波预测方法相比,采用UKF预测方法获得的风速和风向均方根误差分别降低了12.88%和17.50%。因此,所提出的预测模型就时间和空间而言提高了飞行路线规划的准确性。

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