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首页> 外文期刊>Emission Control Science and Technology >Hybrid FEM and FDM Approach for Monolithic Catalytic Converters with Pore Diffusion
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Hybrid FEM and FDM Approach for Monolithic Catalytic Converters with Pore Diffusion

机译:具有孔隙扩散的单片催化转化器的混合有限元和FDM方法

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A transient, three-dimensional model is developed for monolith catalytic converters with washcoat pore diffusion. Due to the unique configuration of monolith converters, the flow within the channel can be considered fully developed laminar flow, and one-dimensional transport equations can be formulated for the flow and species. On the other hand, a three-dimensional equation is necessary for the monolith solid temperature to capture the effects of significant external heat loss or flow maldistribution. The proposed model employs a three-dimensional finite-element method (FEM) for the solid temperature equation and a one-dimensional finite-difference method (FDM) for the flow and species equations. A recently developed asymptotic approach (Bissett, Emiss. Control Sci. Technol. 1(1), 3-16,2015, Bissett, Emiss. Control Sci. Technol. 5(1), 45-54,2019) is utilized to solve the washcoat pore diffusion and surface coverages equations. The three-dimensional FEM meshes are chosen so the nodes also serve for the one-dimensional transport equations. All equations are solved fully coupled, without lagging or reliance upon external tools. The developed solver can efficiently simulate general cross-section geometries (circle, oval, rectangle, etc.) for a catalytic monolith under nonuniform inlet distribution and detailed washcoat pore diffusion. The solver is verified by comparing the simulation results to the one-dimensional simulation results for a simple geometry under uniform inlet conditions. The model can be applied to flow through general monolith catalytic reactors with single or dual washcoat layers and a wide range of kinetics.
机译:开发出瞬态的三维模型,用于用洗瓜涂层扩散的整体催化转化器。由于单极转换器的独特配置,通道内的流动可以被认为是完全开发的层流,并且可以为流动和物种配制一维传输方程。另一方面,单层固体温度需要三维方程,以捕获显着的外部热量损失或流动效果的影响。所提出的模型采用用于固体温度方程的三维有限元方法(FEM)和用于流动和物种方程的一维有限差分方法(FDM)。最近发达的渐近方法(Bissett,Emiss。控制SCI。Technol.1(1),3-16,2015,Bissett,Emiss。控制SCI。技术。5(1),45-54,2019)用于解决洗涤涂层孔扩散和表面覆盖方程。选择三维有限元网格,使得节点还用于一维传输方程。所有方程都是完全耦合的,而不滞后或依赖外部工具。开发的求解器可以有效地模拟在非均匀入口分布下催化整体的一般横截面几何形状(圆形,椭圆形,矩形等)和详细的洗涤涂层孔隙扩散。通过将模拟结果与均匀的入口条件下的简单几何形状进行比较,通过将模拟结果与一维模拟结果进行比较来验证求解器。该模型可用于通过单或双型洗涤涂层和各种动力学流过通用整体料理催化反应器。

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