A SECOND ORDER RELATIVE MOTION MODEL FOR GATEWAY

被引:0
|
作者
Cunningham, David A. [1 ]
Russell, Ryan P. [1 ]
机构
[1] Univ Texas Austin, Dept Aerosp Engn & Engn Mech, Austin, TX 78712 USA
来源
PROCEEDINGS OF THE 44TH ANNUAL AMERICAN ASTRONAUTICAL SOCIETY GUIDANCE, NAVIGATION, AND CONTROL CONFERENCE, AAS 2022 | 2024年
关键词
STATE TRANSITION MATRIX; TIME;
D O I
10.1007/978-3-031-51928-4_34
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Current Gateway rendezvous, proximity operations, and docking plans are limited to segments of the Gateway orbit far from the moon due to highly nonlinear dynamics as Gateway approaches perilune, which stress existing relative motion models. This work introduces a preliminary version of the Quadratic Interpolated State Transition (QIST) relative motion model as a closed-form second order model that provides accurate relative trajectory prediction for the entire Gateway orbit including the difficult region surrounding perilune. The QIST model utilizes interpolated state transition tensors of a Gateway reference orbit, used to propagate arbitrary relative motion trajectories without numerical integration of the relative trajectory. Further, the underlying periodicity of the Gateway orbit used in the new model makes it valid for relative trajectories of arbitrary duration while only storing interpolant information for a single Gateway period. The memory footprint of the precomputed interpolants is considered relative to the interpolant accuracy, with the highest fidelity model requiring 250 kB, and reduced accuracy models needing 150 kB of memory to store the interpolant coefficients. The new model's interpolation and state transition tensor generation scheme is validated by comparing a propagation using interpolated tensors to one using integrated tensors. Both the first- and second-order interpolated state updates are shown to agree with the updates obtained by integration to double precision.
引用
收藏
页码:569 / 583
页数:15
相关论文
共 50 条
  • [1] An Interpolated Second-Order Relative Motion Model for Gateway
    David Cunningham
    Ryan P. Russell
    The Journal of the Astronautical Sciences, 70
  • [2] An Interpolated Second-Order Relative Motion Model for Gateway
    Cunningham, David
    Russell, Ryan
    JOURNAL OF THE ASTRONAUTICAL SCIENCES, 2023, 70 (04):
  • [3] Author Correction: An Interpolated Second-Order Relative Motion Model for Gateway
    David Cunningham
    Ryan P. Russell
    The Journal of the Astronautical Sciences, 70
  • [4] An Interpolated Second-Order Relative Motion Model for Gateway (vol 70, 26, 2023)
    Cunningham, David
    Russell, Ryan P.
    JOURNAL OF THE ASTRONAUTICAL SCIENCES, 2023, 70 (05):
  • [5] Second-order relative motion equations
    Karlgaard, CD
    Lutze, FH
    ASTRODYNAMICS 2001, PTS I-III, 2001, 109 : 2429 - 2448
  • [6] Second-order relative motion equations
    Karlgaard, CD
    Lutze, FH
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2003, 26 (01) : 41 - 49
  • [7] SECOND-ORDER ANALYTICAL SOLUTION FOR RELATIVE MOTION ON ARBITRARILY ECCENTRIC ORBITS
    Willis, Matthew
    Lovell, Alan
    D'Amico, Simone
    SPACEFLIGHT MECHANICS 2019, VOL 168, PTS I-IV, 2019, 168 : 3547 - 3569
  • [8] Author Correction: An Interpolated Second-Order Relative Motion Model for Gateway (The Journal of the Astronautical Sciences, (2023), 70, 4, (26), 10.1007/s40295-023-00393-9)
    Cunningham, David
    Russell, Ryan P.
    Journal of the Astronautical Sciences, 2023, 70 (05):
  • [9] SECOND ORDER NONLINEAR INITIAL VALUE SOLUTION FOR RELATIVE MOTION USING VOLTERRA THEORY
    Stringer, Mary T.
    Newman, Brett
    Lovell, T. Alan
    Omran, Ashraf
    SPACEFLIGHT MECHANICS 2013, PTS I-IV, 2013, 148 : 2133 - 2149
  • [10] SECOND ORDER NONLINEAR BOUNDARY VALUE SOLUTION FOR RELATIVE MOTION USING VOLTERRA THEORY
    Newman, Brett
    Lovell, T. Alan
    SPACEFLIGHT MECHANICS 2013, PTS I-IV, 2013, 148 : 2151 - 2172