首页> 外文会议>Proceedings of the ASME dynamic systems and control conference 2009 >APPLICATION OF AN EXHAUST GEOMETRY BASED DELAY PREDICTION MODEL TO INTERNAL COMBUSTION ENGINES
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APPLICATION OF AN EXHAUST GEOMETRY BASED DELAY PREDICTION MODEL TO INTERNAL COMBUSTION ENGINES

机译:基于排气几何的延迟预测模型在内燃机中的应用

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All vehicle manufacturers implement an air-to-fuel ratio (AFR) control system for emissions reduction in gasoline engines. When using a model based control structure, it is vital to capture the underlying dynamics of the plant as accurately as possible, thus facilitating a robust control design that meets the emissions regulation requirements. One of the leading sources of uncertainty in the engine model is the variable plant delay. Although the delay could be modeled using a look-up table of steady-state delay values, during transients when AFR control is most important the steady-state delay poorly approximates the true delay. An exhaust geometry based delay model was developed previously within the framework of a model based control design for AFR control of stoichiometric engines.rnIn this paper, it is shown that using this model the delay can be predicted with a significantly higher accuracy especially during transients, thus improving emissions performance. Because the plant delay plays a destabilizing role in feedback control, the utility of such a model is also to minimize phase errors between the predicted and measured equivalence ratio (EQR) in a reference tracking control setting.
机译:所有汽车制造商均采用空燃比(AFR)控制系统来减少汽油发动机的排放。当使用基于模型的控制结构时,至关重要的是要尽可能准确地捕获工厂的基本动态,从而促进满足排放法规要求的鲁棒控制设计。发动机模型不确定性的主要来源之一是可变的设备延迟。尽管可以使用稳态延迟值的查找表对延迟进行建模,但是在瞬变过程中,当AFR控制最为重要时,稳态延迟很难逼近真实延迟。基于排气几何的延迟模型是先前在基于化学模型的AFR控制的基于模型的控制设计框架内开发的。在本文中,研究表明,使用该模型可以预测更高的延迟精度,尤其是在瞬态过程中,从而提高排放性能。由于工厂延迟在反馈控制中起着不稳定的作用,因此这种模型的用途还在于最大程度地减少了参考跟踪控制设置中的预测当量比和测量当量比(EQR)之间的相位误差。

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