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首页> 外文期刊>Control Systems Technology, IEEE Transactions on >Second-Order Sliding Mode Strategy for Air–Fuel Ratio Control of Lean-Burn SI Engines
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Second-Order Sliding Mode Strategy for Air–Fuel Ratio Control of Lean-Burn SI Engines

机译:稀燃SI发动机空燃比控制的二阶滑模策略

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摘要

Higher fuel economy and lower exhaust emissions for spark-ignition engines depend significantly on precise air–fuel ratio (AFR) control. However, the presence of large time-varying delay due to the additional modules integrated with the catalyst in the lean-burn engines is the primary limiting factor in the control of AFR. In this paper, the engine dynamics are rendered into a nonminimum phase system using Padé approximation. A novel systematic approach is presented to design a parameter-varying dynamic sliding manifold to compensate for the instability of the internal dynamics while achieving desired output tracking performance. A second-order sliding mode strategy is developed to control the AFR to remove the effects of time-varying delay, canister purge disturbance, and measurement noise. The chattering-free response of the proposed controller is compared with conventional dynamic sliding mode control. The results of applying the proposed method to the experimental data demonstrate improved closed-loop system responses for various operating conditions.
机译:火花点火发动机的更高燃油经济性和更低的废气排放很大程度上取决于精确的空燃比(AFR)控制。然而,由于稀燃发动机中与催化剂集成的附加模块而导致的时变延迟大,是控制AFR的主要限制因素。在本文中,使用Padé逼近将发动机动力学转化为非最小相位系统。提出了一种新颖的系统方法来设计可变参数的动态滑动歧管,以补偿内部动力学的不稳定性,同时实现所需的输出跟踪性能。开发了一种二阶滑模策略来控制AFR,以消除时变延迟,滤罐吹扫干扰和测量噪声的影响。将所提出的控制器的无颤动响应与常规动态滑模控制进行了比较。将所提出的方法应用于实验数据的结果表明,对于各种工况,闭环系统的响应得到了改善。

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