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A Model Based Estimator for Cylinder Specific Air-to-Fuel Ratio Corrections

机译:基于模型的汽缸空燃比修正估计器

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One of the most overlooked and oversimplified components of an engine model used for model based air-to-fuel ratio (AFR) control and/or diagnostics is the exhaust gas dynamics model. Without a proper model of the exhaust system, the mixing of exhaust gases and the dynamic transport delays are challenging to capture accurately, even with a meticulous experimental calibration. By representing the exhaust system with a finite impulse response (FIR) model whose coefficients are based on physical properties, these effects can be predicted accurately and smoothly across the complete range of operating conditions. Through on-line and off-line techniques, this model can markedly improve the performance of both open loop and closed loop AFR control. Because a FIR model has a linear relationship between the input and the output, the input error trajectory can be identified from a single precatalyst oxygen sensor measurement. This technique can be used to supplement the calibration of either the feed-forward or feedback portion of the AFR controller. Additionally, the FIR model can be used for on-line estimation of cylinder imbalance errors. This model based approach to cylinder imbalance estimation has several advantages over the current empirically based methods including robustness and ease of calibration.
机译:用于基于模型的空燃比(AFR)控制和/或诊断的发动机模型中最被忽略和简化的部件之一是废气动力学模型。如果没有合适的排气系统模型,即使进行细致的实验校准,排气的混合和动态传输延迟也很难准确地捕获。通过用系数基于物理特性的有限冲激响应(FIR)模型表示排气系统,可以在整个工作条件范围内准确,平稳地预测这些影响。通过在线和离线技术,该模型可以显着提高开环和闭环AFR控制的性能。因为FIR模型在输入和输出之间具有线性关系,所以可以从单个预催化剂氧气传感器的测量结果确定输入误差轨迹。此技术可用于补充AFR控制器前馈或反馈部分的校准。另外,FIR模型可用于汽缸不平衡误差的在线估计。这种基于模型的气缸不平衡估计方法比当前基于经验的方法具有多个优势,包括鲁棒性和易于校准。

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