4.7 Article

Robust Control Barrier Functions under high relative degree and input constraints for satellite trajectories

Journal

AUTOMATICA
Volume 155, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.automatica.2023.111109

Keywords

Control barrier function; Constrained control; Quadratic programming; Aerospace

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This paper presents methodologies for constructing Control Barrier Functions (CBFs) for nonlinear, control-affine systems, in the presence of input constraints and bounded disturbances. The paper considers three methodologies for creating CBFs, based on the relative degree of the constraint function. Special forms of Robust CBFs (RCBFs) are developed to ensure the feasibility of the control input within the RCBF zero sublevel set. The proposed methods are verified in simulations for an asteroid flyby scenario.
This paper presents methodologies for constructing Control Barrier Functions (CBFs) for nonlinear, control-affine systems, in the presence of input constraints and bounded disturbances. More specifi-cally, given a constraint function with high-relative-degree with respect to the system dynamics, the paper considers three methodologies, two for relative-degree 2 and one for higher relative-degrees, for creating CBFs whose zero sublevel sets are subsets of the constraint function's zero sublevel set Three special forms of Robust CBFs (RCBFs) are developed as functions of the input constraints, system dynamics, and disturbance bounds, such that the resultant RCBF condition on the control input is always feasible for states in the RCBF zero sublevel set. The RCBF condition is then enforced in a switched fashion, which allows the system to operate safely without enforcing the RCBF condition when far from the safe set boundary and allows tuning of how closely trajectories approach the safe set boundary The proposed methods are verified in simulations demonstrating the developed RCBFs in an asteroid flyby scenario for a satellite with low-thrust actuators.& COPY; 2023 Elsevier Ltd. All rights reserved.

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