论文标题

使用Koopman操作员和$ \ ell_2/\ ell_1 $优化的远场最小型燃料航天器集合

Far-Field Minimum-Fuel Spacecraft Rendezvous using Koopman Operator and $\ell_2/\ell_1$ Optimization

论文作者

Zinage, Vrushabh, Bakolas, Efstathios

论文摘要

我们提出了一种用于计算最小燃料远场合点问题的方法,以解决推力 - 矢量矢量航天器。众所周知,使用线性化的航天器的使用方程可能无法给出足够准确的远场合点结果。特别是,随着活动与航天器之间的距离显着大于目标航天器与行星重心之间的距离,基于线性化的控制设​​计方法的精度可能会大大下降。在本文中,我们使用非线性状态空间模型,该模型比线性化模型对动力学更准确的描述相对应,但同时构成了非线性控制设计的已知挑战。为了克服这些挑战,我们利用了基于库普曼操作员的方法,将非线性航天器集合动力学提升为更高的维空间,在该空间上可以通过与原始非线性模型更适合控制设计目的的线性系统近似非线性动力学。然后,使用压缩传感的迭代递归最小二乘(IRLS)算法用于基于升起的线性系统来解决最小燃油控制问题。进行数值模拟以显示基于Koopman操作员方法的功效。

We propose a method to compute approximate solutions to the minimum-fuel far-field rendezvous problem for thrust-vectoring spacecraft. It is well-known that the use of linearized spacecraft rendezvous equations may not give sufficiently accurate results for far-field rendezvous. In particular, as the distance between the active and the target spacecraft becomes significantly greater than the distance between the target spacecraft and the center of gravity of the planet, the accuracy of linearization-based control design approaches may decline substantially. In this paper, we use a nonlinear state space model which corresponds to more accurate description of dynamics than linearized models but at the same time poses the known challenges of nonlinear control design. To overcome these challenges, we utilize a Koopman operator based approach with which the nonlinear spacecraft rendezvous dynamics is lifted into a higher dimensional space over which the nonlinear dynamics can be approximated by a linear system which is more suitable for control design purposes than the original nonlinear model. An Iteratively Recursive Least Squares (IRLS) algorithm from compressive sensing is then used to solve the minimum fuel control problem based on the lifted linear system. Numerical simulations are performed to show the efficacy of the proposed Koopman operator based approach.

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