Control-Oriented Physics-Based NOX Emission Model for a Diesel Engine With Exhaust Gas Recirculation

Saravanan Duraiarasan, R. Salehi, A. Stefanopoulou, S. Mahesh, M. Allain
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引用次数: 6

Abstract

Stringent NOX emission norm for heavy duty vehicles motivates the use of predictive models to reduce emissions of diesel engines by coordinating engine parameters and aftertreatment. In this paper, a physics-based control-oriented NOX model is presented to estimate the feedgas NOX for a diesel engine. This cycle-averaged NOX model is able to capture the impact of all major diesel engine control variables including the fuel injection timing, injection pressure, and injection rate, as well as the effect of cylinder charge dilution and intake pressure on the emissions. The impact of the cylinder charge dilution controlled by the engine exhaust gas recirculation (EGR) in the highly diluted diesel engine of this work is modeled using an adiabatic flame temperature predictor. The model structure is developed such that it can be embedded in an engine control unit without any need for an in-cylinder pressure sensor. In addition, details of this physics-based NOX model are presented along with a step-by-step model parameter identification procedure and experimental validation at both steady-state and transient conditions. Over a complete federal test procedure (FTP) cycle, on a cumulative basis the model prediction was more than 93% accurate.
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基于控制导向物理的柴油机废气再循环NOX排放模型
重型车辆严格的氮氧化物排放标准促使使用预测模型通过协调发动机参数和后处理来减少柴油发动机的排放。本文提出了一种基于物理的、面向控制的NOX模型,用于柴油机进气NOX的估算。该循环平均NOX模型能够捕捉所有主要柴油发动机控制变量的影响,包括燃油喷射正时、喷射压力和喷射速率,以及气缸增压稀释和进气压力对排放的影响。采用绝热火焰温度预测器,模拟了高稀释柴油机排气再循环对气缸装药稀释的影响。该模型结构的开发使得它可以嵌入到发动机控制单元中,而不需要缸内压力传感器。此外,还介绍了这种基于物理的NOX模型的详细信息,以及在稳态和瞬态条件下逐步进行的模型参数识别过程和实验验证。在一个完整的联邦测试程序(FTP)周期中,在累积的基础上,模型预测的准确率超过93%。
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