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A control design and calibration reduction methodology for AFR control in gasoline engines

机译:汽油发动机AFR控制的控制设计和减少标定方法

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摘要

A control architecture for air to fuel ratio (AFR) control of gasoline engines designed to work with switching and/or wide range oxygen sensors, with the goal of minimizing calibration effort while meeting performance requirements, is described. A high bandwidth, dithered inner-loop reference tracking controller with pre-catalyst oxygen sensor feedback coupled with a low bandwidth setpoint tracking outer-loop with post catalyst oxygen sensor feedback, is used to control engine exhaust and O_2 storage in the three-way catalyst (TWC), respectively. A total synthesis inspired design ensures that significant non-linearity in the system is handled through a coordinated and corrective action and expected response blocks in the open-loop, without burdening the closed loop controller. Calibration is achieved offline, through closed loop optimization using genetic algorithms, while simultaneously meeting performance and stability criteria with significantly reduced need for in-vehicle tuning. Experimental results show comparable emissions performance with the stock OEM AFR controller under warmed up conditions over a standard drive cycle.
机译:描述了一种用于汽油发动机的空燃比(AFR)控制的控制架构,该架构设计为与开关和/或大范围氧气传感器配合使用,目的是在满足性能要求的同时最大程度地减少校准工作。具有前催化剂氧传感器反馈的高带宽抖动内环参考跟踪控制器与具有后催化剂氧传感器反馈的低带宽设定点跟踪外环用于控制三元催化剂中的发动机排气和O_2的存储(TWC)。全面的综合设计可确保通过开环中的协调和纠正措施以及预期的响应块来处理系统中明显的非线性,而不会给闭环控制器带来负担。通过使用遗传算法的闭环优化,可以离线实现校准,同时满足性能和稳定性标准,并且大大减少了车载调试的需求。实验结果表明,在标准驱动周期内的预热条件下,与原始OEM AFR控制器相比,排放性能可比。

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