Variational Method-Based Trajectory Optimization for Hybrid Airships

Wen Gao, Yan-Qiang Bi, Xi-Yuan Li, Apeng Dong, Jing Wang, Xiao-Ning Yang
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Abstract

Hybrid airships, combining aerodynamic lift and buoyant lift, are efficient near-space aircraft for scientific exploration, observation, and surveillance. Compared to conventional airplanes and airships, hybrid airships offer unique advantages, including stationary hovering and rapid deployment. Due to the different task requirements and strong coupling between flight and environment, trajectory-optimization methods for traditional aircraft are difficult to apply to hybrid airships directly. We propose a trajectory-optimization model based on the variational method to calculate the optimal time and energy paths under weak, uniform, and latitudinal linear wind fields. Our model shows that the influencing factors for the optimization path can be categorized into three types: airship design parameters, wind field parameters, and departure parameters. The result indicates that the optimal time paths are generally straight lines, and the optimal energy paths are piecewise curves with a 24-h cycle under typical hybrid airship design parameters. This work has provided new insight into the trajectory optimization and parameter design of future hybrid airships.
基于变分法的混合动力飞艇轨迹优化
混合动力飞艇结合了空气动力升力和浮力升力,是用于科学探索、观测和监视的高效近空间飞行器。与传统飞机和飞艇相比,混合动力飞艇具有固定悬停和快速部署等独特优势。由于任务要求不同以及飞行与环境之间的强耦合性,传统飞机的轨迹优化方法很难直接应用于混合动力飞艇。我们提出了一个基于变分法的轨迹优化模型,用于计算弱、均匀和纬向线性风场下的最佳时间和能量路径。我们的模型表明,优化路径的影响因素可分为三类:飞艇设计参数、风场参数和起飞参数。结果表明,在典型的混合动力飞艇设计参数下,最优时间路径一般为直线,最优能量路径为以 24 小时为周期的分段曲线。这项工作为未来混合动力飞艇的轨迹优化和参数设计提供了新的思路。
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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