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1D AND 3D CFD SIMULATION OF EXHAUST-GAS AFTERTREATMENT DEVICES: PARAMETER OPTIMIZATION VIA GENETIC ALGORITHM

机译:废气处理设备的一维和三维CFD模拟:通过遗传算法进行参数优化

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摘要

Future limits on emissions for both gasoline and Diesel engines require adequate and advanced systems for the aftertreatment of the exhaust gas. Computer models as a complementary tool to experimental investigations are indispensable to design reliable after-treatment devices such as catalytic converters and Diesel particulate filters. Therefore, the objective of this contribution is to present an integrated 1D to 3D simulation workflow of catalytic converters (Three-Way-Catalyst, Diesel Oxidation Catalyst, Selective Catalytic Reduction Catalyst, ...) and Diesel particulate filters. The parameters or sets of parameters are obtained by a fast and efficient 1 D-approach of BOOST. They are readily transferable to the 3D simulation code FIRE to investigate detailed aspects such as spatial distribution of temperatures or heat losses. Thus, identical models predicting flow, energy and conversion of species of the exhaust gas were employed to both the 1D gas exchange/cycle and the 3D CFD simulation code. This approach allows to carry out a basic analysis and to define first layouts for the exhaust system. Characteristic parameters of this first design stage are used for the multi-dimensional simulation to evaluate the overall performance including fine tuning of aftertreatment systems.
机译:未来对汽油和柴油发动机排放的限制要求对废气进行后处理的适当,先进的系统。计算机模型作为实验研究的补充工具对于设计可靠的后处理设备(例如催化转化器和柴油机颗粒过滤器)必不可少。因此,该贡献的目的是提出催化转化器(三向催化剂,柴油氧化催化剂,选择性催化还原催化剂等)和柴油颗粒过滤器的集成的1D到3D模拟工作流程。通过BOOST的快速有效的一维方法获得参数或参数集。它们很容易转移到3D仿真代码FIRE,以研究详细的方面,例如温度或热量损失的空间分布。因此,将预测废气的流量,能量和转化的相同模型用于1D气体交换/循环和3D CFD模拟代码。这种方法可以进行基本分析并定义排气系统的第一个布局。此第一个设计阶段的特征参数用于多维仿真,以评估整体性能,包括后处理系统的微调。

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