TY - JOUR
T1 - 面向太阳系边际探测的多天体借力目标选择方法
AU - Cao, Zhiyuan
AU - Li, Xiangyu
AU - Qiao, Dong
N1 - Publisher Copyright:
© 2020, Editorial Office of Journal of Deep Space Exploration. All right reserved.
PY - 2020/12
Y1 - 2020/12
N2 - Solar system boundary exploration will enhance our understanding of the formation and evolution of the Solar system, which is an important issue of future deep space exploration. As the boundary is far from Earth, the energy needed in the exploration is huge. Thus, gravity-assist technique is essential to carry out Solar system boundary exploration mission. This paper aims at multiple gravity-assist transfer design in Solar system boundary exploration missions. First, processing method of goals and constraints in Solar system boundary exploration are studied. And a progressive nested-loop optimization method combining two different kinds of multiple gravity-assist dynamics is provide, as well as the detailed steps. At last, taking the nose and the tail of Solar system boundary for example, the optimal fly-by sequences are provided, proofing the validity of the method. The simulations demonstrates that the optimal multiple gravity -assists trajectories is Earth-Venus-Earth-Earth-Jupiter-Saturn- nose of Solar system, and the optimal multiple gravity -assists trajectories is Earth-Venus-Earth-Earth-Neptune-tail of Solar system. The research will provide the reference for the target selection and mission planning for future Solar system exploration in China.
AB - Solar system boundary exploration will enhance our understanding of the formation and evolution of the Solar system, which is an important issue of future deep space exploration. As the boundary is far from Earth, the energy needed in the exploration is huge. Thus, gravity-assist technique is essential to carry out Solar system boundary exploration mission. This paper aims at multiple gravity-assist transfer design in Solar system boundary exploration missions. First, processing method of goals and constraints in Solar system boundary exploration are studied. And a progressive nested-loop optimization method combining two different kinds of multiple gravity-assist dynamics is provide, as well as the detailed steps. At last, taking the nose and the tail of Solar system boundary for example, the optimal fly-by sequences are provided, proofing the validity of the method. The simulations demonstrates that the optimal multiple gravity -assists trajectories is Earth-Venus-Earth-Earth-Jupiter-Saturn- nose of Solar system, and the optimal multiple gravity -assists trajectories is Earth-Venus-Earth-Earth-Neptune-tail of Solar system. The research will provide the reference for the target selection and mission planning for future Solar system exploration in China.
KW - Fly-by sequence
KW - Multiple gravity-assist
KW - Solar system boundary exploration
KW - Trajectory optimization
UR - http://www.scopus.com/inward/record.url?scp=85120607279&partnerID=8YFLogxK
U2 - 10.15982/j.issn.2096-9287.2020.20200068
DO - 10.15982/j.issn.2096-9287.2020.20200068
M3 - 文章
AN - SCOPUS:85120607279
SN - 2096-9287
VL - 7
SP - 536
EP - 544
JO - Journal of Deep Space Exploration
JF - Journal of Deep Space Exploration
IS - 6
ER -