TY - JOUR
T1 - Invariant manifold and bounds of relative motion between heliocentric displaced orbits
AU - Wang, Wei
AU - Yuan, Jianping
AU - Mengali, Giovanni
AU - Quarta, Alessandro A.
N1 - Publisher Copyright:
Copyright © 2016 by the authors.
PY - 2016
Y1 - 2016
N2 - This paper discusses a methodology for modeling the relative motion between heliocentric displaced orbits by using the Cartesian state variables in combination with a set of displaced orbital elements. Similar to classical Keplerian orbital elements, the newly defined set of displaced orbital elements has a clear physical meaning and provides an alternative approach to obtain a closed-form solution to the relative motion problem between displaced orbits, without linearizing or solving nonlinear equations. The invariant manifold of relative motion between two arbitrary displaced orbits is determined by coordinate transformations, thus obtaining a straightforward interpretation of the bounds, namely, maximum and minimum relative distances of three directional components. The extreme values of these bounds are then calculated from an analytical viewpoint, both for quasi-periodic orbits in the incommensurable case and periodic orbits in the 1:1 commensurable case. Moreover, in some degenerate cases, the extreme values of relative distance bounds can also be solved analytically. For each case, simulation examples are discussed to validate the correctness of the proposed method.
AB - This paper discusses a methodology for modeling the relative motion between heliocentric displaced orbits by using the Cartesian state variables in combination with a set of displaced orbital elements. Similar to classical Keplerian orbital elements, the newly defined set of displaced orbital elements has a clear physical meaning and provides an alternative approach to obtain a closed-form solution to the relative motion problem between displaced orbits, without linearizing or solving nonlinear equations. The invariant manifold of relative motion between two arbitrary displaced orbits is determined by coordinate transformations, thus obtaining a straightforward interpretation of the bounds, namely, maximum and minimum relative distances of three directional components. The extreme values of these bounds are then calculated from an analytical viewpoint, both for quasi-periodic orbits in the incommensurable case and periodic orbits in the 1:1 commensurable case. Moreover, in some degenerate cases, the extreme values of relative distance bounds can also be solved analytically. For each case, simulation examples are discussed to validate the correctness of the proposed method.
UR - http://www.scopus.com/inward/record.url?scp=84980378808&partnerID=8YFLogxK
U2 - 10.2514/1.G001751
DO - 10.2514/1.G001751
M3 - 文章
AN - SCOPUS:84980378808
SN - 0731-5090
VL - 39
SP - 1764
EP - 1776
JO - Journal of Guidance, Control, and Dynamics
JF - Journal of Guidance, Control, and Dynamics
IS - 8
ER -