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Analysis of Transient Thermal and Conversion Characteristics of Dual-Monolith Catalytic Converter with Palladium and Palladium/Rhodium Catalysts

机译:用钯和钯/铑催化剂分析双整体催化转化器的瞬态热和转化特性

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We used a one-dimensional monolithic catalyst model to predict the transient thermal and conversion characteristics of a dual monolithic catalytic converter with a Palladium-only (Pd-only) catalyst and a Palladium/Rhodium (Pd/Rh) catalyst. Prior to the numerical investigation of the dual-catalyst converter, we modified the pre-exponential factor and activation energy of each reaction for both catalysts to achieve acceptable agreement with experimental data under typical operating conditions of automobile applications. We validated the conversion behavior of the lumped parameter model for each catalyst against different engine operating conditions. Two higher cell density substrates, Pd-only catalyst (600 cpsi/3.9 mil) and Pd/Rh catalyst (600 cpsi/4 mil), for faster light-off and improved warm-up performance are used in this study and the two monoliths have been connected without the space between monoliths. As a result of the constriction of the monoliths, a slight temperature drop through the interface between two substrates occurred due to thermal contact resistance. Therefore, to examine the heat transfer mechanism through the conforming rough surfaces, we theoretically determined the thermal joint conductance between monoliths in contact by using existing theory and correlation. The adequacy of the considered theory and correlation for thermal joint conductance was elucidated by the relevance of heat transfer phenomena across the joint. Also, we performed parametric investigations to examine how the overall temperature drop across the joint and exhaust gas emissions were affected by the apparent contact pressure and mass flow rate of the exhaust gas.
机译:我们使用了一维整体式催化剂模型用钯 - 只(仅含Pd)催化剂和钯/铑(钯/铑)催化剂来预测一个双单片催化转换器的瞬态热和转换特性。到双催化剂转换器的数值研究之前,我们修改对于两种催化剂各反应的预指数因子和活化能,以实现与汽车应用典型的操作条件下的实验数据可以接受的协议。我们验证了集总参数模型的转换行为针对不同的发动机工况每一个催化剂。两个较高细胞密度的基材,仅含Pd的催化剂(600 CPSI / 3.9密耳)和Pd /铑催化剂(600 CPSI / 4密耳),更快速起燃的和改进的暖机性能在本研究中使用并且两个整料已经连接不整料之间的空间。作为单块的收缩的结果是,通过在两个基板之间的界面处的轻微的温度下降发生因接触热阻。因此,为了检查通过符合粗糙表面的热传递机构,从理论上通过使用现有的理论和相关性来确定在接触整料之间的热联合电导。所考虑的理论和相关热联合电导的充分性,通过横跨关节热传递现象的相关性阐明。此外,我们进行参数研究以检查跨越关节和废气排放物的整体温度下降是如何受废气的表观接触压力和质量流率。

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