Simulation of flow and heat transfer in diesel particulate filter

K. Yamamoto, Masamichi Nakamura, Hiroshi Yamashita
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引用次数: 22

Abstract

Particulate matters (PM) including soot in diesel exhaust gas are severe environmental problems. It is expected that emission of soot particles can penetrate into the lung, causing human carcinogenic effects. To reduce these emissions especially from heavy-duty vehicles such as cargo trucks and buses, a diesel particulate filter (DPF) has been developed for the after-treatment of exhaust gas. In simple explanation of DPF, it traps PM when exhaust gas passes its porous wall. However, since the filter would be plugged with particles to cause an increase of filter back-pressure, filter regeneration process is needed. In this study, we simulate the flow in DPF by the lattice Boltzmann method (LBM). So far, the LBM has been widely used in fluid simulation, and has been an alternative and promising numerical scheme. It has been confirmed that, through the Chapman-Enskog procedure, the Navier-Stokes equations are derived from LB equations. In the LBM, the treatment of boundary conditions is simple and easy, and it is appropriate to simulate porous media flows such as DPF. In this paper, our approach for LB simulation of combustion is briefly explained. Here, the real filter is used in the simulation. The inner structure of the filter sample is scanned by a 3D X-ray CT technique. By conducting tomography-assisted simulation, we obtain local velocity and pressure distributions in the filter, which is hardly obtained by measurements. First, the flow and pressure profiles are visualized, compared with the empirical equation of the Ergun equation. Then, the soot combustion is simulated. Based on the temperature change and reaction inside the filter, the heat and mass transfer in the filter regeneration process is discussed.
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柴油机微粒过滤器内流动与传热的模拟
柴油尾气中含烟尘的颗粒物(PM)是严重的环境问题。预计排放的烟尘颗粒可以渗透到肺部,对人体产生致癌作用。为了减少这些排放,特别是重型车辆,如货运卡车和公共汽车,柴油颗粒过滤器(DPF)已被开发用于废气后处理。DPF的简单解释是,当废气通过其多孔壁时,它会捕获PM。但是,由于过滤器会被颗粒堵塞,导致过滤器背压增加,因此需要过滤器再生过程。本文采用晶格玻尔兹曼方法(LBM)模拟了DPF内的流动。到目前为止,LBM在流体模拟中得到了广泛的应用,是一种很有前途的替代数值格式。已经证实,通过Chapman-Enskog程序,可以从LB方程推导出Navier-Stokes方程。在LBM中,边界条件的处理简单易行,适用于模拟DPF等多孔介质流动。本文简要介绍了我们的LB燃烧模拟方法。这里,仿真中使用的是真实滤波器。通过三维x射线CT技术扫描过滤器样品的内部结构。通过层析辅助模拟,我们获得了难以通过测量获得的过滤器内的局部速度和压力分布。首先,将流量和压力曲线可视化,并与Ergun方程的经验方程进行了比较。然后,对烟尘燃烧进行了模拟。根据过滤器内部的温度变化和反应,讨论了过滤器再生过程中的传热传质问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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