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Linear dynamic parameter-varying sliding manifold for air-fuel ratio control in lean-burn engines

机译:用于稀薄发动机空燃比控制的线性动态参数变化滑动歧管

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摘要

Precise control of air??fuel ratio (AFR) is one of the most challenging tasks in lean-burn spark ignition engines control. The main problem arises because of the large time-varying delay in the engine operating envelope. In this study, a new sliding mode-based synthesis method is presented to control AFR in order to improve fuel economy and decrease the tailpipe emissions. The time-varying delay dynamics is first estimated by Pad?? approximation, which transfers the system into a system with parameter-varying non-minimum phase dynamics. Non-minimum phase characteristics restrict the application of conventional sliding mode control approach because of the unstable internal dynamics. The system dynamics is then rendered into the normal form to investigate the system unstable internal dynamics. A systematic approach is proposed to design a linear dynamic parameter-varying sliding manifold (LDPVSM) in order to stabilise the unstable internal dynamics according to the desired output tracking error dynamics. Additionally, the proposed LDPVSM provides the system with robustness against unmatched perturbation. The method that can be easily implemented in practical settings exhibits the desired dynamics independent of the matched and unmatched disturbances. The results of applying the proposed method to experimental data demonstrate the closed-loop system stability and a superior performance against time-varying delay, canister purge disturbances and measurement noise.
机译:空燃比(AFR)的精确控制是稀薄火花点火发动机控制中最具挑战性的任务之一。出现主要问题是由于发动机工作范围内的时变延迟较大。在这项研究中,提出了一种新的基于滑模的合成方法来控制AFR,以提高燃油经济性并减少尾气排放。随时间变化的延迟动力学首先由Pad?近似,将系统转换为具有可变参数非最小相位动力学的系统。由于内部动力学不稳定,非最小相位特性限制了传统滑模控制方法的应用。然后将系统动力学转换为标准形式,以调查系统不稳定的内部动力学。提出了一种系统的方法来设计线性动态参数变化滑动歧管(LDPVSM),以便根据所需的输出跟踪误差动态来稳定不稳定的内部动态。此外,提出的LDPVSM为系统提供了无与伦比的摄动能力。在实际设置中可以轻松实现的方法展现出所需的动态特性,而不受匹配和不匹配干扰的影响。将所提出的方法应用于实验数据的结果证明了闭环系统的稳定性,以及对时变延迟,滤罐吹扫干扰和测量噪声的出色性能。

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