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首页> 外文期刊>IEEE Transactions on Control Systems Technology >Observer-Based Estimation of Air-Fractions for a Diesel Engine Coupled With Aftertreatment Systems
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Observer-Based Estimation of Air-Fractions for a Diesel Engine Coupled With Aftertreatment Systems

机译:基于观察者的柴油机后处理系统空气分形估计

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摘要

This paper presents a control-oriented air-fraction dynamic model for a complete diesel engine and aftertreatment system, as well as an observer to estimate the air-fractions in the integrated diesel engine and aftertreatment system. To reduce engine-out emissions and further improve engine efficiency, advanced combustion modes including low temperature combustion, premixed charge compression ignition, and homogenous charge compression ignition, are under intensive investigations. With the popular configuration of dual-loop exhaust gas recirculation (EGR) systems including a high-pressure loop exhaust gas recirculation and a low-pressure loop EGR (LP-EGR), alternative combustion modes can be potentially accomplished. In addition, aftertreatment systems including diesel oxidation catalysts (DOCs), diesel particulate filters (DPFs), and selective catalytic reduction (SCR) systems, are becoming necessary to satisfy stringent emission standards. With the increasing complexity of modern diesel engines and aftertreatment systems, air-path loop control for the diesel engine systems becomes further challenging partially because LP-EGR couples the aftertreatment systems with the diesel engine air-path system. Most of the current air-fraction dynamic models and observers only consider the air-fractions through the diesel engines and air-fraction dynamics through aftertreatment systems are ignored, which, however, will introduce significant modeling errors in the situations when active DPF regenerations and post-fuel injections are implemented. The purpose of this paper is to develop a control-oriented air-fraction dynamic model for a complete diesel engine and aftertreatment system. Based on the developed model, a Luenberger-like observer is proposed and analyzed using a Lyapunov method as well as the physical meaning of system parameters. Experimental results show that the developed air-fraction model is highly accurate and the designed observer is able to make the estimate- air fractions converge to the corresponding true values quickly in both steady-state and transient operations.
机译:本文介绍了一个完整的柴油发动机和后处理系统的面向控制的空气分数动态模型,并提供了一个观察者来估计集成柴油发动机和后处理系统中的空气分数。为了减少发动机排出的废气并进一步提高发动机效率,正在深入研究包括低温燃烧,预混合增压压缩点火和均质增压压缩点火在内的先进燃烧模式。利用包括高压回路排气再循环和低压回路EGR(LP-EGR)的双回路排气再循环(EGR)系统的流行配置,可以潜在地实现替代燃烧模式。另外,包括柴油机氧化催化剂(DOC),柴油机微粒过滤器(DPF)和选择性催化还原(SCR)系统的后处理系统对于满足严格的排放标准变得十分必要。随着现代柴油机和后处理系统的复杂性日益提高,部分将柴油机系统的空气路径进行控制变得更加困难,因为LP-EGR将后处理系统与柴油机空气路径系统耦合在一起。当前大多数空气分数动态模型和观察者仅考虑柴油发动机中的空气分数,而后处理系统中的空气分数动力学则被忽略,但是,这在主动DPF再生和后处理的情况下会引入重大的建模误差。 -实施燃油喷射。本文的目的是为完整的柴油机和后处理系统开发面向控制的空气分数动态模型。基于开发的模型,提出了一种类似于Luenberger的观测器,并使用Lyapunov方法以及系统参数的物理含义进行了分析。实验结果表明,所开发的空气分数模型非常准确,设计的观测器能够使稳态和瞬态运行中的空气分数快速收敛至相应的真实值。

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