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首页> 外文期刊>Emission Control Science and Technology >A Holistic View on Urea Injection for NO_x Emission Control: Impingement Re-atomization, and Deposit Formation
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A Holistic View on Urea Injection for NO_x Emission Control: Impingement Re-atomization, and Deposit Formation

机译:NO_X排放控制尿素注射的整体视图:冲击重新雾化和沉积形成

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摘要

The injection of urea-water solution (UWS) sprays into engine-close selective catalytic reduction (SCR) systems faces developers with complex challenges regarding two-phase flow and deposit formation. Potential spray impact on the static mixing elements inside the exhaust duct can lead to accumulation of liquid film and solid deposits, which may result in detachment of large UWS droplets at the trailing edges of the mixer blades. Present work focuses on the mechanisms of film and deposit formation within the scope of a joint study on spray preparation in the mixing section of SCR systems. A production type SCR exhaust system is used for optical investigations on gas flow and UWS droplets at the mixing element using Laser Doppler Anemometry (LDA) and Long Distance Microscopy (LDM) with a high-speed camera. Measured shear flows inside the mixing element are up to three times higher than the flow velocity upstream the mixer. Here, a decrease of droplet diameters of detached droplets is revealed with increased shear flow velocity. Characteristic urea deposits are created in a laboratory test bench and their surface structure is measured by use of Confocal Microscopy. Results show highly rough surface structures, which are used as input parameters together with the flow measurements to define the computational domain at the trailing edge of the mixer blades. Smoothed Particle Hydrodynamics (SPH) method is adopted for the numerical simulation of the transient two-phase flow and validated by LDM high-speed recordings of droplet detachment. Comparisons reveal a distinct influence of solid depositions on the re-atomization of the liquid film at the rear edge of the mixer blade. By interface resolving simulations with a phase-field method, the wall impingement of a sequence of large secondary droplets and associated film formation are studied. The results indicate that UWS film formation at the exhaust pipe wall may be reduced by hydrophobic surfaces and high gas velocities near the wall.
机译:将尿素水溶液(UWS)喷射到发动机紧密的选择性催化还原(SCR)系统面向具有复杂挑战的开发人员,这是关于两相流量和沉积物的形成。对排气管道内的静态混合元件的潜在喷射撞击可以导致液体膜和固体沉积物的积聚,这可能导致在搅拌机叶片的后缘处的大UWS液滴脱落。目前的工作侧重于薄膜和沉积地层的机制,在SCR系统的混合截面喷雾制剂的联合研究范围内。生产型SCR排气系统用于使用激光多普勒式气旋(LDA)和具有高速摄像机的长距离显微镜(LDM)在混合元件上的气流和UWS液滴的光学研究。在混合元件内的测量剪切流量高于混合器上游的流速高出三倍。这里,通过增加的剪切流速揭示了分离的液滴的液滴直径的减小。在实验室试验台中产生特征尿素沉积,通过使用共聚焦显微镜测量它们的表面结构。结果显示出高度粗糙的表面结构,其用作输入参数以及流量测量,以在混频器叶片的后缘处定义计算域。采用平滑的粒子流体动力学(SPH)方法用于瞬态两相流量的数值模拟,并通过液滴脱离的LDM高速记录验证。比较揭示了固体沉积对混合器叶片后边缘的液膜重新雾化的不同影响。通过用相位场方法解析模拟,研究了一系列大次级液滴和相关膜形成的壁冲击。结果表明,排气管壁的UWS成膜可以通过疏水表面和墙壁附近的高气体速度来减小。

著录项

  • 来源
    《Emission Control Science and Technology》 |2020年第2期|228-243|共16页
  • 作者单位

    Karlsruhe Institute of Technology (KIT) Institute of Internal Combustion Engines Rintheimer Querallee 2 76131 Karlsruhe Germany;

    KIT Institute for Chemical Technology and Polymer Chemistry Karlsruhe Germany;

    KIT Institute of Thermal Turbomachinery Karlsruhe Germany;

    KIT Institute of Fluid Mechanics Karlsruhe Germany;

    Karlsruhe Institute of Technology (KIT) Institute of Internal Combustion Engines Rintheimer Querallee 2 76131 Karlsruhe Germany;

    KIT Institute of Catalysis Research and Technology Karlsruhe Germany;

    KIT Institute of Thermal Turbomachinery Karlsruhe Germany;

    KIT Institute of Thermal Turbomachinery Karlsruhe Germany;

    KIT Institute for Chemical Technology and Polymer Chemistry Karlsruhe Germany KIT Institute of Catalysis Research and Technology Karlsruhe Germany;

    KIT Institute of Fluid Mechanics Karlsruhe Germany;

    Karlsruhe Institute of Technology (KIT) Institute of Internal Combustion Engines Rintheimer Querallee 2 76131 Karlsruhe Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Urea water solution; Mixing element; Deposit formation; Droplet impingement; Atomization; Selective catalytic reduction;

    机译:尿素水溶液;混合元素;矿床形成;液滴冲击;雾化;选择性催化还原;

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