A Combined Homing Trajectory Optimization Method of the Parafoil System Considering Intricate Constraints

W. He, Jiayan Wen, Jin Tao, Qinglin Sun
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Abstract

In order to achieve an accurate airdrop in the actual environment, the influence of complex interferences, such as wind field and the terrain of the environment, must be taken into account. Aiming at this problem, a combined trajectory planning strategy of a parafoil system subjected to intricate conditions is proposed in this paper. This method divides the parafoil airdrop area into an obstacle area and a landing area, then, considering the terrain environment surface, a model for the parafoil system in the wind field is built in the obstacle area. The Gauss pseudo-spectral method is used to transform the complex terrain environment constraint into a series of nonlinear optimal control problems with complex constraints. Finally, the trajectory of the landing area is designed by means of multiphase homing, and the target parameters are solved by the improved marine predator algorithm. The simulation results show that the proposed method has better realizability than a single homing strategy, and the optimization results of the improved marine predator algorithm have higher accuracy.
考虑复杂约束的伞翼系统组合寻的轨迹优化方法
为了在实际环境中实现准确的空投,必须考虑风场、环境地形等复杂干扰因素的影响。针对这一问题,提出了一种复杂条件下伞翼系统的组合轨迹规划策略。该方法将伞伞空投区划分为障碍物区和降落区,然后考虑地形环境面,在障碍物区建立伞伞系统在风场作用下的模型。采用高斯伪谱法将复杂地形环境约束转化为一系列具有复杂约束的非线性最优控制问题。最后,采用多相寻的方法设计着陆区域的弹道,并采用改进的海洋捕食者算法求解目标参数。仿真结果表明,该方法比单一寻的策略具有更好的可实现性,改进的海洋捕食者算法的优化结果具有更高的精度。
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