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CFD Modeling of Processes Upstream of the Catalyst for Urea SCR NOx Reduction Systems in Heavy-Duty Diesel Applications

机译:重型柴油应用中尿素SCR NOx还原系统催化剂上游工艺的CFD建模

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This project is one component of a broader effort whose ultimate goal is to provide CFD-based tools that can be used to optimize the design of urea SCR NOx aftertreatment systems for heavy-duty diesel engines. Here the focus is on predicting the distributions of key chemical species (ammonia, in particular) at the inlet to the catalysts. Two aspects of the physical models have been emphasized: the multi-phase models, and the gas-phase chemistry models. A hierarchy of four simplified geometric configurations has been used for model development and parametric studies, and to establish the appropriate level of physical modeling and numerical fidelity required. The resulting physical and numerical parameters then have been used to model a production SCR system. Initial quantitative comparisons with experimental measurements are encouraging. It is expected that CFD with the level of modeling that has been employed here can provide useful guidance for developing SCR systems that provide good spatial uniformity of ammonia entering the catalysts, while imposing low parasitic pressure drops. Specific recommendations are offered for effective use of CFD for this application, and issues that require further investigation are identified.
机译:该项目是更广泛努力的一个组成部分,其最终目标是提供基于CFD的工具,可用于优化重型柴油机的尿素SCR NOx后处理系统的设计。这里的重点是预测催化剂入口处的关键化学物种(尤其是氨)的分布。已经强调了物理模型的两个方面:多相模型和气相化学模型。四个简化的几何配置的层次结构已用于模型开发和参数研究,并建立了所需的物理建模和数值保真度的适当级别。然后将得到的物理和数值参数用于建模生产SCR系统。最初的定量比较与实验测量结果令人鼓舞。可以预期的是,此处已采用的具有建模水平的CFD可以为开发SCR系统提供有用的指导,该SCR系统可提供进入催化剂的氨气的良好空间均匀性,同时还具有较低的寄生压力降。提供了针对此应用程序有效使用CFD的具体建议,并确定了需要进一步调查的问题。

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