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Detailed modeling of the evaporation and thermal decomposition of urea-water solution in SCR systems

机译:SCR系统中尿素水溶液蒸发和热分解的详细模型

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This work is aimed to develop a multicomponent evaporation model for droplets of urea-water solution (UWS) and a thermal decomposition model of urea for automotive exhausts by using the selective catalytic reduction systems. In the multicomponent evaporation model, the influence of urea on the UWS evaporation is taken into account using a nonrandom two-liquid activity model. The thermal decomposition model is based on a semidetailed kinetic scheme accounting not only for the production of ammonia (NH3) and isocyanic acid but also for the formation of heavier solid by-products (biuret, cyanuric acid, and ammelide). This kinetics model has been validated against gaseous data as well as solid-phase concentration profiles obtained by Lundstroem et al. (2009) and Schaber et al. (2004). Both models have been implemented in IFP-C3D industrial software to simulate UWS droplet evaporation and decomposition as well as the formation of solid by-products. It has been shown that the presence of the urea solute has a small influence on the water evaporation rate, but its effect on the UWS temperature is significant. In addition, the contributions of hydrolysis and thermolysis to urea decomposition have been assessed. Finally, the impacts of the heating rate as well as gas-phase chemistry on urea decomposition pathways have been studied in detail. It has been shown that reducing the heating rate of the UWS causes the extent of the polymerization to decrease because of the higher activation energy. ? 2011 American Institute of Chemical Engineers AIChE J, 2012
机译:这项工作旨在通过使用选择性催化还原系统,开发尿素水溶液(UWS)液滴的多组分蒸发模型和汽车尾气尿素的热分解模型。在多组分蒸发模型中,使用非随机两液活度模型考虑了尿素对UWS蒸发的影响。热分解模型基于半详细的动力学方案,不仅考虑了氨(NH 3 )和异氰酸的产生,而且还考虑到了较重的固体副产物(缩二脲,氰尿酸,和阿米利德)。该动力学模型已经针对气体数据以及Lundstroem等人获得的固相浓度分布进行了验证。 (2009)和Schaber等。 (2004)。两种模型均已在IFP-C3D工业软件中实现,以模拟UWS液滴的蒸发和分解以及固体副产物的形成。已经表明,尿素溶质的存在对水蒸发速率的影响很小,但是其对UWS温度的影响是显着的。另外,已经评估了水解和热解对尿素分解的贡献。最后,详细研究了升温速率以及气相化学性质对尿素分解途径的影响。已经表明,由于较高的活化能,降低UWS的加热速率导致聚合程度降低。 ? 2011美国化学工程师学会AIChE J,2012

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