高压共轨系统的无模型自适应全阶滑动模式控制与时延估计

Yun Long, Xiaoyang Liu, Chong Yao, Enzhe Song
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引用次数: 0

摘要

本文提出了一种新的无模型自适应全阶滑动模态控制(MAFOSMC)方法,用于解决船用发动机高压共轨系统(HPCRS)的精确控制难题。首先,基于流体力学建立了高压共轨系统的数学模型,并给出了问题陈述。通过采用时延控制(TDC)技术,设计了无模型控制结构,它可以在没有系统确切先验信息的情况下估计不确定和未知的动态。此外,基于全阶滑动模态控制(FOSMC)和改进的功率达到规律,开发了连续滑动模态控制器,具有精度高、鲁棒性强、响应速度快等特点。然后,设计了一种双向自适应策略来处理未建模动态和未知干扰。利用 Lyapunov 理论对闭环系统进行了稳定性分析。总之,在三个不同的测试场景下,与传统的 FOSMC 进行了实验比较,验证了所提出的 MAFOSMC 方法在船用发动机上的功效和优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model-free adaptive full-order sliding mode control with time delay estimation of high-pressure common rail system
This paper presents a new model-free adaptive full-order sliding mode control (MAFOSMC) approach for addressing the challenge of precise control for the high-pressure common rail system (HPCRS) in marine engines. First, the mathematical model of HPCRS is modeled based on the hydrodynamics and the problem statement is presented. The model-free control structure is designed by adopting time delay control (TDC) technology, which can estimate uncertain and unknown dynamics without exact priori information about the system. Furthermore, the continuous sliding mode controller is developed to exhibit features of high accuracy, strong robustness, fast response based on full-order sliding mode control (FOSMC), and improved power reaching law. Then, a bidirectional adaptive strategy was designed to handle the unmodelled dynamics and unknown disturbances. The stability analysis of the closed-loop system is conducted using Lyapunov theory. Overall, the experimental comparisons were conducted with traditional FOSMC under three different testing scenarios, validating the efficacy and benefits of the proposed MAFOSMC approach for marine engines.
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