首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering >Effect of hydrogen-enriched gas as a reductant on the performance of a lean NOx trap catalyst for a light-duty diesel engine
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Effect of hydrogen-enriched gas as a reductant on the performance of a lean NOx trap catalyst for a light-duty diesel engine

机译:富氢气体作为还原剂对轻型柴油机稀薄NO x 捕集催化剂性能的影响

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Direct-injection diesel engines have become prime candidates for future transportation needs owing to their high thermal efficiency. However, the increase in nitrogen oxides (NOx) within local high-temperature regions and the increase in particulate matter within the diffusion flame region during diesel combustion are problematic and must be resolved. The utilization of NOx-absorbing catalysts, based on the concept of NOx storage and release, is one of the most promising techniques able to reduce NOx emissions within net oxidizing gas conditions. This type of NOx removal system, called the lean NOx trap (LNT) catalyst, absorbs NOx under lean exhaust gas conditions and releases NOx under rich conditions. This technology provides the advantage of high NOx conversion efficiency; however, the correct amount of reducing agent must be supplied within the catalytic converter under appropriate conditions in order to guarantee a high NOx reduction efficiency. In this research, the performance characteristics of an LNT, using a hydrogen-enriched gas as a reductant, were examined via various injection strategies and rich exhaust gas conditions. Although the hydrogen concentration of hydrogen-enriched gas also affects the LNT performance, the composition of hydrogen-enriched gas was fixed as a similar composition to that for the ideal re-forming of diesel fuel. The NOx reduction efficiency is closely connected to the injection timing and duration of reductant flow. When the injection was introduced 1.5 s after throttling, the LNT NOx conversion was maximized. However, the LNT NOx conversion decreased when the injection timing was earlier or later than 1.5 s. Because the actual rich duration of the exhaust gas is limited at a specific point during the rich operation for 3 s, the LNT NOx conversion was maximized when the hydrogen-enriched gas was injected at the minimum air-to-fuel ratio observed at the LNT inlet. By optimizing the control of this flow, the system encounters only a 1.9 per cent fuel penalty while maintaining a 90 per cent NOx reduction efficiency.
机译:直喷柴油机由于其高热效率而已成为未来运输需求的主要候选者。但是,局部高温区域内氮氧​​化物(NO x )的增加和柴油机燃烧过程中扩散火焰区域内颗粒物的增加是有问题的,必须解决。基于NO x 的存储和释放概念的NO x 吸收催化剂的利用,是能够减少NO x <的最有前途的技术之一。净氧化性气体条件下的排放。这种类型的NO x 去除系统,称为稀薄NO x 捕集(LNT)催化剂,在稀薄排气条件下吸收NO x 并释放NO x 在丰富的条件下。该技术具有NO x 转化效率高的优点。然而,必须在适当的条件下在催化转化器中提供正确量的还原剂,以确保高的NO x 还原效率。在这项研究中,通过各种喷射策略和丰富的废气条件,研究了使用富氢气体作为还原剂的LNT的性能特征。尽管富氢气体的氢浓度也影响LNT性能,但富氢气体的组成被固定为与理想重整柴油燃料相似的组成。 NO x 的还原效率与喷射时间和还原剂流的持续时间密切相关。节流后1.5 s引入注射时,LNT NO x 转化率最大。然而,当注入时间早于或晚于1.5 s时,LNT NO x 转化率降低。由于废气的实际浓化持续时间在浓化过程中持续了3 s的特定时间点,因此,当以最小的空气量注入富氢气体时,LNT NO x 转化率最大化。 LNT入口处的燃油比。通过优化对该流的控制,该系统仅遇到1.9%的燃油损失,同时保持90%的NO x 还原效率。

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