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Analytical design methods for transfer trajectories between the Earth and the Lunar Orbital Station

机译:地球与月球轨道站之间传输轨迹的分析设计方法

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Lunar Orbital Station (LOS) is proposed as support of manned lunar exploration missions. A fast-converging iteration method for determining the initial conditions of two-impulse transfer trajectories between the Earth and the LOS is proposed based on the patched conic approach. In the Earth phase, near Earth state is connected with the state at the lunar sphere of influence (LSOI) based on the relationship between the initial and terminal orbital state. Then, an analytical algorithm is proposed to find the state vector at LSOI, such to satisfy the LOS orbital constraint. An iterative process is finally adopted to generate favorable initial solutions that satisfy the constraint near the Earth and at the perilune. The algorithm convergence is investigated, and two types of transfer trajectories are found for both Earth-LOS and LOS-Earth transfer. Based on the algorithm, orbital transfer windows, velocity impulse and time of flight are analyzed in the typical years 2025 and 2034. At last, the initial solution is corrected with a high fidelity model based on the active-set method, which shows the precision of this algorithm. The novel procedure for the transfer trajectories design and the analytic result can be used as a basis for rapid mission evaluation and design for future manned lunar missions based on the LOS.
机译:农历轨道站(LOS)被提议作为载人农历勘查任务的支持。基于修补的圆锥接近,提出了一种快速融合的迭代方法,用于确定地球和LOS之间的双脉冲传输轨迹的初始条件。在地球阶段,基于初始和终端轨道状态之间的关系,在地球状态附近与月球范围的状态(LSOI)连接。然后,提出了一种分析算法来在LSOI中找到状态向量,使得满足LOS轨道约束。最终采用迭代过程来产生满足地球附近和贫困的有利初始解决方案。研究了算法收敛,并找到了两种类型的转移轨迹,用于地球和地球接地转移。基于算法,​​轨道传输窗口,在典型的年2025和2034中分析了轨道转移窗口,速度脉冲和飞行时间。最后,基于基于主动集方法的高保真模型校正了初始解决方案,显示了精度这个算法。转移轨迹设计和分析结果的新型程序可作为快速任务评估和基于洛杉矶的载人农历任务设计的基础。

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