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Application and Improvement of NOx Storage and Reduction Technology to Meet Real Driving Emissions

机译:满足实际驾驶排放的NOx储存和还原技术的应用和改进

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摘要

Strategies to achieve RDE requirement for diesel passenger car are introduced in this paper focusing on NOx storage and reduction (NSR) technologies. High NOx conversion performance with advanced NSR technologies which make use of reducing agents like NH3 or intermediate reductants created from HC (Bisaiji et al. in SAE Int J Fuels Lubr 5:380-388, 2012) dosing, is demonstrated by vehicle tests. The mechanisms to create reducing agents are discussed in detail. MS analysis identified the key elements to produce reductant species for diesel NOx after-treatment by adsorbed intermediate reductants (DiAir), focusing on the effect of oxygen on the catalyst surface and the catalyst formulation. It was found that surface oxygen has an important role to make intermediate reductants during HC dosing for DiAir. Moreover, the role of Ce component in oxidizing the injected HC and create intermediate reductants effectively became clear. Furthermore, high CO oxidation performance of NSR after ageing in comparison with diesel oxidation catalyst is shown and the mechanism is discussed. Oxidation performance is also important for diesel vehicles because the catalyst temperature is further reducing due to CO2 reduction. The potential to meet next stringent legislation is shown in this paper from the view point of not only NOx reduction but also CO oxidation by an advanced NSR system.
机译:本文介绍了实现柴油乘用车RDE要求的策略,重点是NOx的存储和还原(NSR)技术。通过车辆测试证明了采用先进的NSR技术的高NOx转化性能,该技术利用了诸如NH3的还原剂或由HC生成的中间还原剂(Bisaiji等人,在SAE Int J Fuels Lubr 5:380-388,2012年)。详细讨论了生成还原剂的机制。 MS分析确定了通过吸附的中间还原剂(DiAir)产生用于柴油NOx后处理的还原剂种类的关键元素,重点是氧气对催化剂表面和催化剂配方的影响。已发现在DiAir的HC配量过程中,表面氧对于制造中间还原剂具有重要作用。此外,Ce成分在氧化注入的HC和有效生成中间还原剂中的作用也变得清晰起来。此外,与柴油氧化催化剂相比,老化后的NSR具有较高的CO氧化性能,并对其机理进行了探讨。氧化性能对柴油车辆也很重要,因为催化剂的温度由于二氧化碳的减少而进一步降低。从不仅通过先进的NSR系统还原NOx而且还可以氧化CO的角度,本文展示了满足下一个严格法规的潜力。

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