Systems Engineering and Electronics ›› 2026, Vol. 48 ›› Issue (8): 2790-2801.doi: 10.12305/j.issn.1001-506X.2026.08.24

• Guidance, Navigation and Control • Previous Articles     Next Articles

RLV reentry-stage adaptive nonsingular predefined-time attitude convergence control

Xuanming HOU1, Hechuan XU2, Xiaozhe JU1, Changzhu WEI1   

  1. 1. School of Astronautics,Harbin Institute of Technology,Harbin 150001,China
    2. Aviation Ammunition Research Institute,China Ordnance Industry Group,Harbin 150030,China
  • Received:2025-05-13 Revised:2025-09-14 Online:2026-07-30 Published:2025-11-25
  • Contact: Xiaozhe JU

Abstract:

In view of the high-dynamic reentry-stage attitude tracking control problem for reusable launch vehicles (RLV) under external disturbances and model parameter uncertainties, an adaptive nonsingular predefined-time convergence control scheme that combines rapid response with simplified parameter tuning is proposed. Firstly, a vary-gain predefined-time convergence form is proposed, integrated with a hyperbolic tangent function to construct a nonsingular vary-gain sliding mode surface and controller, and set the adaptive time-varying gain to optimize controller convergence accuracy. Secondly, a radial basis function neural network (RBFNN) algorithm with low-complexity adaptive laws is developed to compensate for compound disturbances encompassing external perturbations and structural/aerodynamic uncertainties. Finally, through Lyapunov analysis, it can be proved that attitude tracking errors converge to a neighborhood of the origin within a single-parameter predefined time. Explicit relationships are established between the tracking error bounds and parameters of the sliding surface, control law, adaptive neural network, and all signals in the closed-loop system are bounded. Numerical simulations indicate that the method can achieve rapid, high-quality attitude command tracking for RLV.

CLC Number: 

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