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Modelling of phosphorus poisoning using computational fluid dynamics and its effect on automotive catalyst performance

机译:利用计算流体动力学对磷中毒建模及其对汽车催化剂性能的影响

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摘要

Accumulation of phosphorus in an automotive catalyst is detrimental to catalyst performance, leading to partial or total deactivation. The deactivation model described in this paper utilizes CFD to derive a one-dimensional mathematical solution to obtain phosphorus accumulation profiles down the length of a catalyst. The early work of Oh and Cavendish is the basis for this study. A model output, θ, represents the fraction of catalytic surface area that is deactivated. This poisoned fraction is shown to build up locally depending on exposure time to phosphoric acid (H₃PO₄) in the exhaust flow.Having obtained the poisoned fraction from the model as a function of poison exposure time, θ is used to predict light-off times and conversion efficiencies during the deactivation process through incorporation of a kinetic reaction scheme. The model provides a good representation of the phenomena noted in real catalysts; i.e., delayed light-off times. The model can be readily adapted to 3D catalyst systems.
机译:汽车催化剂中磷的积累不利于催化剂的性能,导致部分或全部失活。本文描述的失活模型利用CFD来推导一维数学解,以获得沿催化剂长度的磷积累曲线。 Oh和Cavendish的早期工作是这项研究的基础。模型输出θ表示失活的催化表面积的分数。该中毒分数显示是根据废气中磷酸(H₃PO3)的暴露时间而局部积累的。从模型中获得的中毒分数是毒物暴露时间的函数,θ用于预测起燃时间,通过并入动力学反应方案,在失活过程中的转化效率。该模型很好地表示了实际催化剂中发现的现象。即延迟的起燃时间。该模型可以轻松地适应3D催化剂系统。

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