Fault-Tolerant Tracking Control of Hypersonic Vehicle Based on a Universal Prescribe Time Architecture

Author:

Guo Fangyue1ORCID,Zhang Wenqian2ORCID,Lv Maolong1ORCID,Zhang Ruiqi3

Affiliation:

1. Air Traffic Control and Navigation School, Air Force Engineering University, Xi’an 710038, China

2. Equipment Management and Unmanned Aerial Vehicle Engineering School, Air Force Engineering University, Xi’an 710038, China

3. Modern Aviation College, Guangzhou Institute of Science and Technology, Guangzhou 510540, China

Abstract

An adaptive tracking control strategy with a prescribe tracking error and the convergence time is proposed for hypersonic vehicles with state constraints and actuator failures. The peculiarity is that constructing a new time scale coordinate translation mapping method, which maps the prescribe time on the finite field to the time variable on the infinite field, and the convergence problem of the prescribe time is transformed into the conventional system convergence problem. The improved Lyapunov function, the improved tuning function, and the adaptive fault-tolerant mechanism are further constructed. Combined with the neural network, the prescribe time tracking control of the speed subsystem and the height subsystem are realized respectively. Combined with the Barbalat lemma and Lyapunov stability theory, the boundedness of the closed-loop system is proved. The simulation results have proven that, compared with other control strategies, it can ensure that the tracking error converges to the prescribe interval in the prescribe time and meets the constraints of the whole state of the system.

Funder

China Postdoctoral Science Foundation

Publisher

MDPI AG

Reference34 articles.

1. Appointed-Time Control for Flexible Hypersonic Vehicles with Conditional Disturbance Negation;Sun;IEEE Trans. Aerosp. Electron. Syst.,2023

2. Adaptive Multiple-Model-Based Fault-Tolerant Control for Non-minimum Phase Hypersonic Vehicles with Input Saturations and Error Constraints;Wang;IEEE Trans. Aerosp. Electron. Syst.,2023

3. A comprehensive RFD-FTC-DCA system for hypersonic vehicles with saturation constraints;Li;Int. J. Control,2024

4. Nonrecursive Control for Formation-Containment of HFV Swarms with Dynamic Event-Triggered Communication;Lv;IEEE Trans. Ind. Inform.,2023

5. Attitude optimization control of hypersonic flight vehicle considering partially unknown control direction;Guo;Trans. Inst. Meas. Control,2023

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