TY - JOUR
T1 - Parameterized design of abort trajectories with a lunar flyby for a crewed mission
AU - Dong, Tianshan
AU - Luo, Qinqin
AU - Han, Chao
AU - Xu, Ming
N1 - Publisher Copyright:
© 2022 COSPAR
PY - 2023/3/15
Y1 - 2023/3/15
N2 - This article proposes an analytical preliminary design method for abort trajectory with a lunar flyby and the trajectory ergodic representation based on parameterization, as well as their application in studying the abort trajectories’ characteristics. First, by introducing two parameters, the perilune altitude and the perilune transfer time, the preliminary solution is developed parametrically using pseudostate theory to connect two special Lambert processes. The fast convergence of the improved differential correction under the high-fidelity gravity field verifies the accuracy of the proposed preliminary design method. Next, the two parameters are regarded as a set of variables to define an abort trajectory. Based on this, an ergodic representation of the abort trajectory with a certain abort time is yielded using the proposed design method, which offers a global view of the feasible abort trajectories. In addition, the influences of some factors on the performance of these abort trajectories are investigated based on the proposed design method and ergodic representation. The simulation results show that the abort time and the transfer time of the nominal trajectory significantly affect the ergodic representation and characteristics of the abort trajectory.
AB - This article proposes an analytical preliminary design method for abort trajectory with a lunar flyby and the trajectory ergodic representation based on parameterization, as well as their application in studying the abort trajectories’ characteristics. First, by introducing two parameters, the perilune altitude and the perilune transfer time, the preliminary solution is developed parametrically using pseudostate theory to connect two special Lambert processes. The fast convergence of the improved differential correction under the high-fidelity gravity field verifies the accuracy of the proposed preliminary design method. Next, the two parameters are regarded as a set of variables to define an abort trajectory. Based on this, an ergodic representation of the abort trajectory with a certain abort time is yielded using the proposed design method, which offers a global view of the feasible abort trajectories. In addition, the influences of some factors on the performance of these abort trajectories are investigated based on the proposed design method and ergodic representation. The simulation results show that the abort time and the transfer time of the nominal trajectory significantly affect the ergodic representation and characteristics of the abort trajectory.
KW - Ergodic representation of abort trajectories
KW - High-fidelity model
KW - Preliminary design
KW - Pseudostate theory
KW - Quasi-lambert problem
UR - https://www.scopus.com/pages/publications/85146536325
U2 - 10.1016/j.asr.2022.10.068
DO - 10.1016/j.asr.2022.10.068
M3 - 文章
AN - SCOPUS:85146536325
SN - 0273-1177
VL - 71
SP - 2550
EP - 2565
JO - Advances in Space Research
JF - Advances in Space Research
IS - 6
ER -