Development of the NO2 ratio model for heavy-duty diesel engine two-stage SCR aftertreatment system

氮氧化物 柴油颗粒过滤器 柴油 选择性催化还原 柴油机 柴油废气油液 环境科学 化学 微粒 氮氧化物 汽车工程 催化作用 工程类 燃烧 生物化学 有机化学
作者
Jincheng Li,Zunqing Zheng,Haibo Sun,Gang Li,Mingfa Yao
出处
期刊:International Journal of Engine Research [SAGE Publishing]
标识
DOI:10.1177/14680874241311049
摘要

A diesel oxidation catalyst (DOC) outlet nitrogen dioxide (NO 2 ) ratio model based on the model-based calibration (MBC) method was proposed, which is an important part of the two-stage selective catalytic reduction (SCR) control strategy for heavy-duty diesel engines. Emissions regulations for heavy-duty diesel engines around the world have become more stringent in limiting nitrogen oxide (NOx), especially when the engine is cold starting, which brings serious challenges to the aftertreatment system. The two-stage SCR system with the close coupled selective catalytic reduction-diesel oxidation catalyst-diesel particulate filter-selective catalytic reduction (ccSCR-DOC-DPF-SCR) layout has the potential to achieve ultra-low NOx emissions due to its high technology maturity, but the two-stage SCR urea injection control strategy based on the chemical reaction kinetics model presents a new functional requirement for the prediction of NO 2 ratio at the DOC outlet. However, experiments show that the Euro VI method based on calibration to obtain DOC outlet NO 2 ratio was not suitable for the two-stage SCR system, because of the temperature delay effect of ccSCR in transient conditions. Therefore, a quadratic polynomial model using the MBC method was constructed to predict the DOC outlet NO 2 ratio in the two-stage SCR system. The proposed MBC model can predict the NO 2 ratio by using exhaust mass flow rate, DOC inlet temperature, and DOC inlet NOx concentration. Experiments show that the proposed MBC model has wide applicability, for the two-stage SCR system under transient conditions, whether ccSCR urea injection is enabled will not affect the accuracy of the model’s prediction of the NO 2 ratio for the DOC outlet or SCR inlet.
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