Improved FPTPPF-based predefined-time tracking control of a UVMS with actuator faults

IF 4.6 2区 工程技术 Q1 ENGINEERING, CIVIL
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Abstract

In this paper, a new predefined-time control scheme is proposed for the trajectory tracking problem of an underwater vehicle-mechanic system (UVMS) with external disturbances, model uncertainties and actuator faults. First, a predefined-time controller is proposed to achieve convergence in a predefined time so that the convergence time does not depend on the initial value of the system. Second, considering the possible grasping and transportation tasks for the UVMS, an improved flexible predefined-time prescribed performance function (FPTPPF) with self-adjustment capability is proposed to avoid the vulnerabilities of the existing prescribed performance functions. A control framework is constructed for the integral barrier Lyapunov function and FPTPPF, which can achieve good tracking performance. Third, a predefined-time extended state observer (ESO) is constructed to address the problems caused by external disturbances, model uncertainties and actuator faults. For strong sudden disturbances, the H control strategy is designed via the backstepping method, which effectively improves the robustness. Finally, the predefined-time stability of the system is proven via Lyapunov stability theory, where the tracking errors can converge to a small region of the null domain in a predefined time. The performance and superiority of the proposed predefined-time control method are verified via simulation comparisons.
基于 FPTPPF 的 UVMS 预定义时间跟踪控制改进型,带执行器故障
本文针对具有外部干扰、模型不确定性和执行器故障的水下航行器-机械系统(UVMS)的轨迹跟踪问题,提出了一种新的预定义时间控制方案。首先,提出了一种预定义时间控制器,以在预定义时间内实现收敛,从而使收敛时间不取决于系统的初始值。其次,考虑到 UVMS 可能的抓取和运输任务,提出了一种具有自我调整能力的改进型灵活预定义时间规定性能函数 (FPTPPF),以避免现有规定性能函数的漏洞。为积分屏障 Lyapunov 函数和 FPTPPF 构建了一个控制框架,可实现良好的跟踪性能。第三,构建了预定义时间扩展状态观测器(ESO),以解决外部扰动、模型不确定性和执行器故障引起的问题。针对强突发扰动,通过反步进方法设计了 H∞ 控制策略,有效提高了鲁棒性。最后,通过 Lyapunov 稳定性理论证明了系统的预定时间稳定性,即跟踪误差可以在预定时间内收敛到空域的一个小区域。通过仿真比较,验证了所提出的预定义时间控制方法的性能和优越性。
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来源期刊
Ocean Engineering
Ocean Engineering 工程技术-工程:大洋
CiteScore
7.30
自引率
34.00%
发文量
2379
审稿时长
8.1 months
期刊介绍: Ocean Engineering provides a medium for the publication of original research and development work in the field of ocean engineering. Ocean Engineering seeks papers in the following topics.
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