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A New Take on Porous Medium Approach for Modelling Monoliths and Other Multiple Channel Devices

机译:一种新的多孔介质方法,用于模拟整体和其他多通道设备

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The porous medium approach is widely used to represent high-resistance devices, such as catalysts, filters or heat exchangers. Because of its computational efficiency, it is invaluable when flow losses need to be predicted on a system level. One drawback of using the porous medium approach is the loss of detailed information downstream of the device. Correct evaluation of the turbulence downstream affects the calculation of the related properties, e.g. heat and mass transfer. The novel approach proposed in the current study is based on a modified distribution of the resistance across the porous medium, which allows to account for the single jets developing in the small channels, showing an improved prediction of the turbulence at the exit of the device, while keeping the low computational demand of the porous medium approach. The benefits and limitations of the current approach are discussed and presented by comparing the results with different numerical approaches and experiments. The flexibility of the proposed approach in terms of describing the device geometry is demonstrated via an optimisation study where the size of the monolith channels is modified to obtain a more uniform distribution of the flow. With the rapid development of additive technologies, the proposed method offers endless possibilities for catalyst and similar device design improvement. Although here the new approach is applied to a monolith commonly used in automotive exhaust after-treatment systems, it can be generalized to other high resistance devices with multiple flow passages.
机译:多孔介质方法广泛用于代表高电阻器件,例如催化剂,过滤器或热交换器。由于其计算效率,当在系统级别预测流量损耗时,它是非常宝贵的。使用多孔介质方法的一个缺点是在设备下游的详细信息丢失。对下游的湍流的正确评估影响了相关性能的计算,例如,热量和传质。本研究中提出的新颖方法基于多孔介质的电阻的修改分布,这允许考虑在小通道中显影的单个喷射,示出了装置出口处的湍流预测,同时保持多孔介质方法的低计算需求。通过将结果与不同数值方法和实验进行比较来讨论和呈现目前方法的益处和局限。通过优化研究证明了所提出的方法的灵活性,以通过优化研究进行了说明,其中修改了整体通道的尺寸以获得更均匀的流动分布。随着添加剂技术的快速发展,所提出的方法为催化剂和类似装置设计改进提供了无尽的可能性。虽然这里,新方法应用于常用于汽车排气后处理系统的单片,但是它可以广泛地推广到具有多个流动通道的其他高电阻器件。

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